Flexure bearing to reduce quadrature for resonating micromachined devices

Information

  • Patent Grant
  • 9352961
  • Patent Number
    9,352,961
  • Date Filed
    Friday, September 16, 2011
    13 years ago
  • Date Issued
    Tuesday, May 31, 2016
    8 years ago
Abstract
An example include microelectromechanical die for sensing motion that includes a fixed portion, an anchor coupled to the fixed portion, a first nonlinear suspension member coupled to anchor on a side of the anchor, a second nonlinear suspension member coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane and a proof-mass that is planar, the proof mass suspended at least in part by the first nonlinear suspension member and the second nonlinear suspension member such that the proof-mass is rotable about the anchor and is slideable in a plane parallel to the fixed portion.
Description
BACKGROUND

Quadrature error is one of the primary factors that limit the performance of micromachined sensors such as gyroscopes. Considering the relative magnitudes of the drive and sense oscillations, even an extremely small part of the drive motion coupling into a sense-mode could dominate over the Coriolis response.


Practically, fabrication imperfections may result in less-than-ideal geometries in structures such as gyroscope structures. Less-than-ideal geometries can cause a drive oscillation to partially couple into a sense-mode. Even though several cross-coupling approaches exist, such as elastic, viscous and electrostatic coupling approaches, in certain cases the elastic coupling due to anisoelasticity in the suspension elements increases in magnitude beyond a desired level.


In sensor systems such as gyroscope systems with out-of-plane operational modes, anisoelasticity between the in-plane and out-of-plane directions is the dominating source of Quadrature error. Sidewall tilt or skew in deep reactive-ion etching (“DRIE”) can result in deviation of the cross-section of the flexure bearings from a rectangle to a parallelogram, causing the principle axes of elasticity of the suspension flexure bearings to deviate from parallel and orthogonal to the device surface. In an example, single or multi-axis micromachined sensor structures such as gyroscope structures can suffer from high-quadrature error caused at least in part by DRIE skew.


Additionally, prior resonators rely on simple straight flexure bearings to generate a flexing structure to allow the device to displace in resonance. This creates significant problems when etching creates a skew in the flexure bearing, causing large undesired displacement, often actuating a sense mechanism.





BRIEF DESCRIPTION OF THE DRAWINGS

In the drawings, which are not necessarily drawn to scale, like numerals may describe similar components in different views. Like numerals having different letter suffixes may represent different instances of similar components. The drawings illustrate generally, by way of example, but not by way of limitation, various embodiments discussed in the present document.



FIG. 1 illustrates a sensor structure including a suspension structure, according to an example.



FIG. 2A illustrates a portion of a suspension, according to an example.



FIG. 2B illustrates the suspension of FIG. 8A, in a bending state in which a top portion is bent upward, in an example.



FIG. 2C illustrates the suspension of FIG. 8A, in a bending state in which a top portion is bent downward, in an example.



FIG. 3 illustrates torsional motion of a suspended structure about a z-axis, according to an example.



FIG. 4 illustrates torsional motion of a suspended structure about an x-axis, according to an example.



FIG. 5 illustrates torsional motion of a suspended structure about a y-axis, according to an example.



FIG. 6 illustrates a 2-Axis Gyroscope including a low quadrature error suspension, according to an example.



FIG. 7 illustrates a 3-Axis Gyroscope including a low quadrature error suspension, according to an example.



FIG. 8 illustrates quadrature error for an example suspension.



FIG. 9 illustrates a drive mode, according to an example.



FIG. 10 illustrates a four bend flexure bearing, according to an example.



FIG. 11 illustrates a flexure bearing including a flexing flexure bearing and a non-flexing flexure bearing, according to an example.



FIG. 12 illustrates a flexure bearing including a flexing flexure bearing shorter than the flexure bearing of FIG. 11, and a non-flexing flexure bearing shorter than the non-flexing flexure bearing of FIG. 11, according to an example.



FIG. 13A illustrates a suspension with large clearances, according to an example.



FIG. 13B illustrates stresses related to flexing of flexures bearings.



FIG. 14 illustrates a suspension including a switchback, according to an example.



FIG. 15 illustrates the suspension of FIG. 14 flexed in torsion around a z-axis, according to an example.



FIG. 16A illustrates the suspension of FIG. 14 flexed in torsion around a z-axis, according to an example.



FIG. 16B illustrates the suspension of FIG. 14 flexed about a y-axis, according to an example.



FIG. 16C illustrates the suspension of FIG. 14 flexed about the x-axis, according to an example.



FIG. 16D illustrates the suspension of FIG. 14 flexed in displacement along a y-axis, according to an example.



FIG. 17 shows a method of making a low-quadrature-error suspension, according to an embodiment.





DETAILED DESCRIPTION

Unwanted sidewall flex can negatively affect the performance of flexure bearings (“flexures”), such as flexure bearings that support one or more portions of a microelectromechanical systems (“MEMS”) structure such as a die. In an example, if one or more sidewalls have an angle error, an in-plane drive motion can cause out-of-plane motion, such as when the skew axis is along a flexure bearing or beam length. In an example, when skewed pliable or compliant flexure bearings or beams are located on opposite sides of a drive motion, a resulting out-of-plane deflection can cause or contribute to quadrature error. In an example, a low-quadrature suspension system aims at reducing or cancelling undesired out-of-plane motion.



FIG. 1 illustrates a sensor structure including a suspension structure, according to an example. Various examples disclose a low-quadrature suspension system for a sensor. In an example, a suspension structure can be utilized in a torsional multi-axis micromachined gyroscope system with a proof-mass such as a single proof-mass 104. In an example, a proof-mass 104 is suspended at its center with a single central anchor 106. In an example, one or more flexure bearings connect the anchor 106 to the proof-mass 104, such as to the proof-mass main frame 116. In an example, one or more flexures allow the proof-mass to oscillate torsionally about three perpendicular axes. In an example, suspension flexure bearings or beams provide in-plane and out-of-plane deflections, allowing the proof-mass to oscillate torsionally about the x, y, and z axes.


An example includes a fixed portion 118, wherein the anchor 106 is coupled to the fixed portion 118. In an example, a first nonlinear suspension member 108 is coupled to anchor 106 on a side of the anchor. In an example, a second nonlinear suspension member 120 coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane 122, such as a x-z plane. Various examples include a proof-mass 104 that is planar, the proof mass suspended at least in part by the first nonlinear suspension member 108 and the second nonlinear suspension member 120 such that the proof-mass is rotable about the anchor 106 and is slideable in a plane parallel to the fixed portion, such as in the x-y plane.


In an example, a C-shaped flexure bearing 108 includes a inner portion 110 coupled to the anchor 106 and extending toward the anchor bisecting plane 122, a center portion 114 having a proximal portion and a distal portion, with a proximal portion coupled to the inner portion 110 and a distal portion extending away from the anchor 106 along the anchor bisecting plane 122 and coupled to a outer portion 112 extending away from the anchor bisecting plane 122. In an example, the center portion 114 is perpendicular the inner portion 110 and the outer portion 112. In an examples, the center portion 114 is parallel the anchor bisecting plane 122.


In an examples, the anchor 106, the first nonlinear suspension member 108, the second nonlinear suspension member 120 and the proof-mass 104 are formed of a monolithic material. In an example, the fixed portion 118 comprises a fixed monolithic material other than the monolithic material of the anchor 106, the first nonlinear suspension member 108, the second nonlinear suspension member 120 and the proof-mass 104. In an example, the fixed portion 118 comprises a fixed monolithic material the same as the monolithic material of the anchor 106, the first nonlinear suspension member 108, the second nonlinear suspension member 120 and the proof-mass 104.


In an example, flexure bearings are disposed on each side of the central anchor, such as on opposite sides of the anchor. In an example, out-of-plane motion caused by each C-shaped flexure bearing on a side is cancelled out by its symmetric counterpart. Accordingly, in an example, the quadrature error induced on each flexure bearing is locally reduced or cancelled.


In an example, a central suspension structure 102 is utilized in a sensor, such as a 6 degree of freedom (“DOF”) sensor 100, such as a monolithic 6-DOF sensor, that is comprised of symmetric flexures bearings. In an example, the symmetric flexure bearings include “C-shaped flexure bearings” 108. In an example, each C-shaped flexure bearing includes inner 110 and outer 112 flexure bearings and a high-stiffness connection flexure bearing 114 between two flexure bearings. In an example, the inner flexure bearing 112 is connected to the anchor 106 on one end, and the outer flexure bearing 112 is connected to the proof mass 104 on another end. In an example, the suspension system 102 is formed by a total of eight C-shaped flexure bearings 108. In an example, two symmetric C-shaped flexure bearings are located on each of the four sides of a central anchor structure.


In an example, a suspension system provides three gyroscope operational modes: torsional in-plane about the z-axis for the drive motion; torsional out-of-plane about the x-axis for the y-axis gyroscope sense motion; and torsional out-of-plane about the y-axis for the x-axis gyroscope sense motion. In an example, the oscillation modes can be switched between each other.



FIG. 2A illustrates a portion of a suspension, according to an example. FIG. 2B illustrates the suspension of FIG. 2A, in a bending state in which a top portion is bent upward, in an example. FIG. 2C illustrates the suspension of FIG. 2A, in a bending state in which a top portion is bent downward, in an example. The examples shown illustrate the deformation profile in each direction of the suspension mechanism. In an example, bending occurs equal and opposite in both deformation cases illustrates in FIG. 2B and FIG. 2C. In an example, in each direction the two flexure bearings bend in opposite ways. In an example, by creating opposing out-of-plane deformations that cancel each other, the overall out-of-plane deformation from one end of the flexure to the other is minimized.



FIG. 3 illustrates torsional motion of a suspended structure about a z-axis, according to an example. In an example, a suspension system 300 comprises two symmetric C-shaped flexure bearings 302, 304 on each side of a central anchor structure 306. In an example, one or both of the C-shaped flexure bearings 302, 304 is formed of a high-stiffness connection flexure bearing 308 disposed between two flexure bearings 310, 312. In an example, during in-plane torsional motion, such as motion parallel to the plane of the figure, the out-of-plane motion caused by the deflection of the flexure bearings in each C-shaped flexure bearing on a side is cancelled out by a symmetric counterpart 310′, 312′. Accordingly, quadrature error induced on each flexure bearing is locally reduced or cancelled.


The illustrated example illustrates torsional motion about a Z-Axis, i.e. an axis extending into and out of the page. In an example, during the in-plane torsional motion, the inner 310 and outer 312 flexure bearings in each C-shaped flexure bearing bend in-plane. In an example, the high-stiffness connection bearings 308 do not experience significant bending. For a counterclockwise rotation of the proof-mass about the z-axis, top part of the proof mass moves left as shown. In an example, the high-stiffness connection bearings both move left. As a result, the inner and outer flexures on the right C-shaped flexure bearing bend down, while the ones on the left C-shaped flexure bearing bend up. Thus, in an example, the motion results in deflections in opposite directions in the symmetric C-shaped flexure bearing flexures. Since the flexures in symmetric C-shaped flexure bearings deflect in opposite directions, the out-of-plane motion caused by the deflection of the flexure bearings in each C-shaped flexure bearing on a side is cancelled out by its symmetric counterpart. Thus, the quadrature error induced on each flexure bearing is locally cancelled.



FIG. 4 illustrates torsional motion of a suspended structure about an x-axis, according to an example. In an example, a suspension structure can be utilized in a torsional multi-axis micromachined gyroscope system with a proof-mass such as a single proof-mass 404. In an example, a proof-mass 404 is suspended at its center with a single central anchor 406. In an example, one or more flexure bearings 402 connect the anchor 406 to the proof-mass 404. In an example, during the out-of-plane torsional motion about the x-axis, primarily the C-shaped suspension pairs 412, 412′ on the y-axis sides of the anchor deflect. In an example, the inner flexure bearings 410, 410′ in these C-shaped suspensions bend torsionally about the x-axis, acting as a torsional hinge.


In an example, the die is wafer shaped, with each of a first nonlinear suspension member 408 and a second nonlinear suspension member 412 having a substantially rectangular cross-section with the height of the cross-section smaller than the width.



FIG. 5 illustrates torsional motion of a suspended structure about a y-axis, according to an example. In an example, a suspension structure can be utilized in a torsional multi-axis micromachined gyroscope system with a proof-mass such as a single proof-mass 404. In an example, a proof-mass 404 is suspended at its center with a single central anchor 406. In an example, one or more flexure bearings 402 connect the anchor 406 to the proof-mass 404. In an example, during the out-of-plane torsional motion about the y-axis, primarily the C-shaped suspension pairs 412, 412′ on the x-axis sides of the anchor deflect. The inner flexure bearings in these C-shaped flexure bearings 414, 414′ bend torsionally about the y-axis, acting as a torsional hinge.



FIG. 6 illustrates a 2-Axis Gyroscope including a low quadrature error suspension, according to an example. In an example, a structure 602 can be utilized in various torsional multi-axis micromachined gyroscope systems with a single proof-mass 604 that is suspended at its center with a single central anchor 606. The flexures 608 connect the anchor to the proof-mass 604, and allow the proof-mass to oscillate torsionally about all three axes. The illustrated example senses motion about each of the x-axis and the y-axis, and proves three gyroscope operational modes: torsional in-plane about the z-axis for the drive motion; torsional out-of-plane about the x-axis for the y-axis gyroscope sense motion; and torsional out-of-plane about the y-axis for the x-axis gyroscope sense motion. In an example, one or more comb electrodes 616 are coupled to a fix portion of the device and sense motion of comb electrodes 618 coupled to the proof mass 604. In an example, the comb teeth of the comb electrodes 618 are disposed along an axis that bisects an angle between the x-axis and the x-axis.



FIG. 7 illustrates a 3-Axis Gyroscope including a low quadrature error suspension, according to an example. In an example, a structure 702 can be utilized in various torsional multi-axis micromachined gyroscope systems with a single proof-mass 704 that is suspended at its center with a single central anchor 706. The flexures 708 connect the anchor to the proof-mass 704, and allow the proof-mass to oscillate torsionally about all three axes. In an example, a device function as an a three-axis (“X/Y/Z”) gyroscope. In an example, the suspension system 702 provides similar gyroscope operational modes to the device illustrated in FIG. 6. In an example, the illustrated device of FIG. 7 includes additional flexures 720 that provide for the Z-axis sense mode. In an example, one or more comb electrodes 716 are coupled to a fix portion of the device and sense motion of comb electrodes 718 coupled to the proof mass 704. In an example, the comb teeth of the comb electrodes 718 are disposed along an axis that bisects an angle between the x-axis and the x-axis.



FIG. 8 illustrates quadrature error for an example suspension. In an example, the angle of the flexure bearings has a significant effect on the quadrature. In an example, for each design the angle can be chosen to optimize the quadrature error arising from skew of the resonator flexure bearing flexures. In an example, for the desired implementation of the suspension system, the optimal angle is 15 degrees. In an example, the optimal angle is structure shape dependent, and is selected based on the structure of a respective device. In an example, for a desired structure, two flexure bearings are set at the same angular shift, but two flexure bearings could easily be set at different angles.



FIG. 9 illustrates a drive mode, according to an example. The inventors recognized that skew effect creates quadrature errors in suspension configurations including an anchor 906, and that they could minimize the effect by creating opposite skews on the same flexure 902 or flexure pair 904. Accordingly, there are two flexing flexure bearings separated by a frame, each of which deforms in the opposite direction in the drive mode of operation. The opposite directions of the deformation cause the skew to create out-of-plane deformation in opposite directions, which cancel each other out at the final connection to the moving component. This is used to replace an existing mechanism which only includes one flexure bearing, the skew of which causes deformation in only one direction, creating a lot of out-of-plane motion without any canceling.


However, in some examples, the inner 910, 910′ and outer 912, 912′ flexure bearings are rotated so that deformation causes one flexure bearing to bend up and one flexure bearing to bend downward during drive mode actuation. In an example, the drive mode is a rotational mode about a central anchor. In an example, for each of the four suspension pairs 404, the drive mode causes one to deform in one direction and the other in the other direction.



FIG. 10 illustrates a four bend flexure bearing, according to an example. In an example, the flexure 1002 can include more than one bend. In an example, this can allow for more tightly controlled out-of-plane motion. In an example, a number of switchbacks 1004 are included. In an example, the switchbacks define a zigzag that extends from the anchor 1006 to the proof-mass 1005. In an example, the zigzag includes switchbacks of a regular amplitude along the patter extending from the anchor 1006 to the proof-mass 1005. In additional embodiments, the amplitude varies. In an example, the switchbacks have a C-shape, with top 1008 and bottom 1014 members parallel to one another, but not parallel to a high-stiffness portion 1016.



FIG. 11 illustrates a flexure bearing including a flexing flexure bearing and a non-flexing flexure bearing, according to an example. In an example, a flexure 1102 can also be parameterized by lengthening or shortening the flexing flexure bearings 1110, 1114 or the non-flexing flexure bearing(s) 1112. In the example shown in FIG. 12, the outer flexing flexure bearing 1110 and non-flexing flexure bearing 1112 have been shortened.



FIG. 12 illustrates a flexure bearing including a flexing flexure bearing shorter than the flexure bearing of FIG. 11, and a non-flexing flexure bearing shorter than the non-flexing flexure bearing of FIG. 11, according to an example. The outer flexing flexure bearing 1210 and non-flexing flexure bearing 1212 have been shortened compared to the components of FIG. 11.



FIG. 13A illustrates a suspension with large clearances, according to an example. FIG. 13B illustrates stresses related to flexing of flexures bearings. In the examples, there are voids 1302 disposed between the flexure bearing 1304 and the proof-mass 1306.



FIG. 14 illustrates a die 1400 including a suspension including a switchback, according to an example. The switchback 1402 extends between the C-shaped flexure bearing 1406 and the proof mass 1408. The addition of the switchback 1402 further reduces quadrature error, at least because it reduces out-of-plane flexing due at least in part to DRIE etching.


In an example, the outer portion 1412 of a first nonlinear suspension member 1416 has a proximal portion coupled to the center portion 1420 of the first nonlinear suspension member 1416, and a distal portion extending away from the anchor bisecting plane 1422, with a fourth portion 1402 of the first nonlinear suspension member 1416 coupled to the distal portion of the outer portion at a proximal portion of the fourth portion 1402, and extending toward the anchor 1404 to a distal portion of the fourth portion that is coupled to a fifth portion 1424 of the first nonlinear suspension member that extends toward the anchor bisecting plane 1422. In an example, the inner portion 1410 and the outer portion 1412 are linear and parallel.



FIG. 15 illustrates the suspension of FIG. 14 flexed in torsion around a z-axis, according to an example. FIG. 16A illustrates the suspension of FIG. 14 flexed in torsion around a z-axis, according to an example. FIG. 16B illustrates the suspension of FIG. 14 flexed about a y-axis, according to an example. FIG. 16C illustrates the suspension of FIG. 14 flexed about the x-axis, according to an example. FIG. 16D illustrates the suspension of FIG. 14 flexed in displacement along a y-axis, according to an example.



FIG. 17 shows a method of making a low-quadrature-error suspension, according to an embodiment. At 1702 the method includes etching a material to define an anchor. At 1704, the method includes etching the material to define a first nonlinear suspension member coupled to anchor on a side of the anchor. At 1706, the method includes etching the material to define a second nonlinear suspension member coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane. At 1708 the method includes etching the material to define a proof-mass that is planar, the proof mass suspended at least in part by the first nonlinear suspension member and the second nonlinear suspension member such that the proof-mass is rotable about the anchor and is slideable in a plane parallel to the substrate.


Optional methods are possible, including methods in which etching includes deep reactive-ion etching. In some optional methods, the first nonlinear suspension member and the second nonlinear suspension member are part of a first set, comprising etching the material to define a second set of nonlinear suspension members opposite the first set. Some optional methods include etching a third set of nonlinear suspension members for coupling the anchor to the proof-mass and etching a fourth set of nonlinear suspension members for coupling the anchor to the proof-mass, wherein the third set and the fourth set have a similar for factor to the first set and the second set and are bisected by a second anchor bisecting plane perpendicular the first.


ADDITIONAL NOTES

The subject matter of the present document can be described using several examples. Example 1 includes a microelectromechanical die for sensing motion, that includes a fixed portion, an anchor coupled to the fixed portion, a first nonlinear suspension member coupled to anchor on a side of the anchor, a second nonlinear suspension member coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane and a proof-mass that is planar, the proof mass suspended at least in part by the first nonlinear suspension member and the second nonlinear suspension member such that the proof-mass is rotable about the anchor and is slideable in a plane parallel to the fixed portion.


Example 2 includes the subject matter of example 1, wherein the first nonlinear suspension member has a C-shape.


Example 3 includes the subject matter of example 2, wherein the C-shape includes a inner portion coupled to the anchor and extending toward the anchor bisecting plane, a center portion having a proximal portion and a distal portion, with a proximal portion coupled to the inner portion and a distal portion extending away from the anchor along the anchor bisecting plane and coupled to a outer portion extending away from the anchor bisecting plane.


Example 4 includes the subject matter of example 3, wherein the outer portion of the first nonlinear suspension member has a proximal portion coupled to the center portion of the first nonlinear suspension member, and a distal portion extending away from the anchor bisecting plane, with a fourth portion of the first nonlinear suspension member coupled to the distal portion of the outer portion at a proximal portion of the fourth portion, and extending toward the anchor to a distal portion of the fourth portion that is coupled to a fifth portion of the first nonlinear suspension member that extends toward the anchor bisecting plane.


Example 5 includes the subject matter of any of examples 3-4, wherein the inner portion and the outer portion are linear and parallel.


Example 6 includes the subject matter of example 5, wherein the center portion is perpendicular the inner portion and the outer portion.


Example 7 includes the subject matter of any of examples 3-6, wherein the center portion is parallel the anchor bisecting plane.


Example 8 includes the subject matter of any of examples 1-7, wherein the anchor, the first nonlinear suspension member, the second nonlinear suspension member and the proof-mass are formed of a monolithic material.


Example 9 includes the subject matter of example 8, wherein the fixed portion comprises a fixed monolithic material other than the monolithic material of the anchor, the first nonlinear suspension member, the second nonlinear suspension member and the proof-mass.


Example 10 includes the subject matter of any of examples 1-9, wherein the fixed portion comprises a fixed monolithic material the same as the monolithic material of the anchor, the first nonlinear suspension member, the second nonlinear suspension member and the proof-mass.


Example 11 includes the subject matter of any of examples 1-10, wherein the die is wafer shaped, with each of the first nonlinear suspension member and the second nonlinear suspension member have a substantially rectangular cross-section with the height of the cross-section smaller than the width.


Example 12 includes a that includes etching a material to define an anchor, etching the material to define a first nonlinear suspension member coupled to anchor on a side of the anchor, etching the material to define a second nonlinear suspension member coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane and etching the material to define a proof-mass that is planar, the proof mass suspended at least in part by the first nonlinear suspension member and the second nonlinear suspension member such that the proof-mass is rotable about the anchor and is slideable in a plane parallel to the substrate.


Example 13 includes the subject matter of example 12, wherein etching includes deep reactive-ion etching.


Example 14 includes the subject matter of any of examples 12-13, wherein the first nonlinear suspension member and the second nonlinear suspension member are part of a first set, comprising etching the material to define a second set of nonlinear suspension members opposite the first set.


Example 15 includes the subject matter of example 14, comprising etching a third set of nonlinear suspension members for coupling the anchor to the proof-mass and etching a fourth set of nonlinear suspension members for coupling the anchor to the proof-mass, wherein the third set and the fourth set have a similar for factor to the first set and the second set and are bisected by a second anchor bisecting plane perpendicular the first.


The above detailed description includes references to the accompanying drawings, which form a part of the detailed description. The drawings show, by way of illustration, specific embodiments in which the invention can be practiced. These embodiments are also referred to herein as “examples.” All publications, patents, and patent documents referred to in this document are incorporated by reference herein in their entirety, as though individually incorporated by reference. In the event of inconsistent usages between this document and those documents so incorporated by reference, the usage in the incorporated reference(s) should be considered supplementary to that of this document; for irreconcilable inconsistencies, the usage in this document controls.


In this document, the terms “a” or “an” are used, as is common in patent documents, to include one or more than one, independent of any other instances or usages of “at least one” or “one or more.” In this document, the term “or” is used to refer to a nonexclusive or, such that “A or B” includes “A but not B,” “B but not A,” and “A and B,” unless otherwise indicated. In the appended claims, the terms “including” and “in which” are used as the plain-English equivalents of the respective terms “comprising” and “wherein.” Also, in the following claims, the terms “including” and “comprising” are open-ended, that is, a system, device, article, or process that includes elements in addition to those listed after such a term in a claim are still deemed to fall within the scope of that claim. Moreover, in the following claims, the terms “first,” “second,” and “third,” etc. are used merely as labels, and are not intended to impose numerical requirements on their objects. The above description is intended to be illustrative, and not restrictive. In other examples, the above-described examples (or one or more aspects thereof) may be used in combination with each other. Other embodiments can be used, such as by one of ordinary skill in the art upon reviewing the above description.


The Abstract is provided to comply with 37 C.F.R. §1.72(b), to allow the reader to quickly ascertain the nature of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. Also, in the above Detailed Description, various features may be grouped together to streamline the disclosure. This should not be interpreted as intending that an unclaimed disclosed feature is essential to any claim. Rather, inventive subject matter may lie in less than all features of a particular disclosed embodiment. Thus, the following claims are hereby incorporated into the Detailed Description, with each claim standing on its own as a separate embodiment. The scope of the invention should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.

Claims
  • 1. A microelectromechanical die for sensing motion, comprising: a fixed portion;an anchor coupled to the fixed portion;a first nonlinear suspension member coupled to the anchor on a side of the anchor;a second nonlinear suspension member coupled to the anchor on the same side of the anchor, the second nonlinear suspension member having a shape and location mirroring the first nonlinear suspension member about an anchor bisecting plane; anda proof-mass that is planar, the proof mass suspended at least in part by the first nonlinear suspension member and the second nonlinear suspension member such that the proof-mass is rotable about the anchor and is slideable in a plane parallel to the fixed portion.
  • 2. The die of claim 1, wherein the first nonlinear suspension member has a C-shape.
  • 3. The die of claim 2, wherein the C-shape includes a inner portion coupled to the anchor and extending toward the anchor bisecting plane, a center portion having a proximal portion and a distal portion, with a proximal portion coupled to the inner portion and a distal portion extending away from the anchor along the anchor bisecting plane and coupled to an outer portion extending away from the anchor bisecting plane.
  • 4. The die of claim 3, wherein the outer portion of the first nonlinear suspension member has a proximal portion coupled to the center portion of the first nonlinear suspension member, and a distal portion extending away from the anchor bisecting plane, with a fourth portion of the first nonlinear suspension member coupled to the distal portion of the outer portion at a proximal portion of the fourth portion, and extending toward the anchor to a distal portion of the fourth portion that is coupled to a fifth portion of the first nonlinear suspension member that extends toward the anchor bisecting plane.
  • 5. The die of claim 3, wherein the inner portion and the outer portion are linear and parallel.
  • 6. The die of claim 5, wherein the center portion is perpendicular to the inner portion and the outer portion.
  • 7. The die of claim 3, wherein the center portion is parallel to the anchor bisecting plane.
  • 8. The die of claim 3, wherein the anchor, the first nonlinear suspension member, the second nonlinear suspension member and the proof-mass are formed of a monolithic material.
  • 9. The die of claim 8, wherein the fixed portion comprises a fixed monolithic material other than the monolithic material of the anchor, the first nonlinear suspension member, the second nonlinear suspension member and the proof-mass.
  • 10. The die of claim 9, wherein the fixed portion comprises a fixed monolithic material that is the same as the monolithic material of the anchor, the first nonlinear suspension member, the second nonlinear suspension member, and the proof-mass.
  • 11. A method for sensing motion with a microelectromechanical die, comprising: rotating a proof mass with respect to an anchor that is coupled to a substrate by: deforming a first nonlinear suspension member, that couples the proof-mass to a first side of the anchor, out-of-plane of the plane of the proof-mass, above the proof-mass; anddeforming a second nonlinear suspension member, that couples the proof-mass to the first side of the anchor, out-of-plane of the plane of the proof-mass on an opposite first side of the plane of the proof-mass, below the proof-mass.
  • 12. The method of claim 11, wherein the deforming the second nonlinear suspension member provides an out-of-plane motion below the proof-mass that cancels out an out-of-plane motion above the proof-mass.
  • 13. The method of claim 11, wherein, deforming a third nonlinear suspension member, that couples the proof-mass to a second side of the anchor, out-of-plane of the plane of the proof-mass; anddeforming a fourth nonlinear suspension member, that couples the proof-mass to the second side of the anchor, out-of-plane of the plane of the proof-mass on an opposite second side of the plane of the proof-mass.
  • 14. The method of claim 13, wherein, the second side of the anchor is opposite the first side of the anchor, wherein deforming the third nonlinear suspension member includes deforming the third nonlinear suspension member below the plane of the proof-mass, and wherein deforming the fourth nonlinear suspension member includes deforming the fourth nonlinear suspension member above the plane of the proof-mass.
  • 15. The method of claim 14, wherein the plane bisects the anchor vertically and passes between the first and second nonlinear suspension members and between the third and fourth nonlinear suspension members.
CLAIM OF PRIORITY AND RELATED APPLICATIONS

The present application is a U.S. National Stage Filing under 35 U.S.C. 371 from International Patent Application Serial No. PCT/US2011/052006, filed on Sep. 16, 2011, and published on Mar. 22, 2012 as WO 2012/037501 A2, which claims the benefit of priority of U.S. Provisional Patent Application Ser. No. 61/384,247, entitled “LOW-QUADRATURE SUSPENSION SYSTEM FOR MULTI-AXIS GYROSCOPES,” filed Sep. 18, 2010 and U.S. Provisional Patent Application Ser. No. 61/384,512, entitled “IMPROVED QUADRATURE REDUCTION STRUCTURE FOR RESONATING MICROMACHINED DEVICES,” filed Sep. 20, 2010, each of which is incorporated by reference in its entirety. The present application is related to U.S. patent application Ser. No. 12/849,742, entitled “MICROMACHINED INERTIAL SENSOR DEVICES,” filed Aug. 3, 2010; U.S. patent application Ser. No. 12/849,787, entitled “MICROMACHINED DEVICES AND FABRICATING THE SAME,” filed Aug. 3, 2010 and U.S. Provisional Patent Application Ser. No. 61/384,240, entitled “MICROMACHINED MONOLITHIC 6-AXIS INERTIAL SENSOR,” filed Sep. 18, 2010, each of which is incorporated by reference in its entirety.

PCT Information
Filing Document Filing Date Country Kind 371c Date
PCT/US2011/052006 9/16/2011 WO 00 5/7/2013
Publishing Document Publishing Date Country Kind
WO2012/037501 3/22/2012 WO A
US Referenced Citations (252)
Number Name Date Kind
3231729 Stern Jan 1966 A
4896156 Garverick Jan 1990 A
5481914 Ward Jan 1996 A
5487305 Ristic et al. Jan 1996 A
5491604 Nguyen et al. Feb 1996 A
5600064 Ward Feb 1997 A
5656778 Roszhart Aug 1997 A
5703292 Ward Dec 1997 A
5723790 Andersson Mar 1998 A
5751154 Tsugai May 1998 A
5760465 Alcoe et al. Jun 1998 A
5765046 Watanabe et al. Jun 1998 A
5894091 Kubota Apr 1999 A
5912499 Diem et al. Jun 1999 A
6131457 Sato Oct 2000 A
6214644 Glenn Apr 2001 B1
6236096 Chang et al. May 2001 B1
6250157 Touge Jun 2001 B1
6253612 Lemkin et al. Jul 2001 B1
6301965 Chu et al. Oct 2001 B1
6351996 Nasiri et al. Mar 2002 B1
6366468 Pan Apr 2002 B1
6390905 Korovin et al. May 2002 B1
6501282 Dummermuth et al. Dec 2002 B1
6504385 Hartwell Jan 2003 B2
6553835 Hobbs et al. Apr 2003 B1
6654424 Thomae et al. Nov 2003 B1
6664941 Itakura et al. Dec 2003 B2
6722206 Takada Apr 2004 B2
6725719 Cardarelli Apr 2004 B2
6737742 Sweterlitsch May 2004 B2
6781231 Minervini et al. Aug 2004 B2
6848304 Geen Feb 2005 B2
7051590 Lemkin et al. May 2006 B1
7054778 Geiger et al. May 2006 B2
7093487 Mochida Aug 2006 B2
7166910 Minervini et al. Jan 2007 B2
7173402 Chen et al. Feb 2007 B2
7202552 Zhe et al. Apr 2007 B2
7210351 Lo et al. May 2007 B2
7221767 Mullenborn et al. May 2007 B2
7240552 Acar et al. Jul 2007 B2
7258011 Nasiri et al. Aug 2007 B2
7258012 Xie et al. Aug 2007 B2
7266349 Kappes Sep 2007 B2
7293460 Zarabadi et al. Nov 2007 B2
7301212 Mian et al. Nov 2007 B1
7305880 Caminada et al. Dec 2007 B2
7339384 Peng et al. Mar 2008 B2
7358151 Araki et al. Apr 2008 B2
7436054 Zhe Oct 2008 B2
7449355 Lutz et al. Nov 2008 B2
7451647 Matsuhisa et al. Nov 2008 B2
7454967 Skurnik Nov 2008 B2
7518493 Bryzek et al. Apr 2009 B2
7539003 Ray et al. May 2009 B2
7544531 Grosjean Jun 2009 B1
7595648 Ungaretti et al. Sep 2009 B2
7600428 Robert et al. Oct 2009 B2
7616078 Prandi et al. Nov 2009 B2
7622782 Chu et al. Nov 2009 B2
7694563 Durante et al. Apr 2010 B2
7706149 Yang et al. Apr 2010 B2
7781249 Laming et al. Aug 2010 B2
7795078 Ramakrishna et al. Sep 2010 B2
7817331 Moidu Oct 2010 B2
7851925 Theuss et al. Dec 2010 B2
7859352 Sutton Dec 2010 B2
7950281 Hammerschmidt May 2011 B2
7965067 Grönthal et al. Jun 2011 B2
8004354 Pu et al. Aug 2011 B1
8006557 Yin et al. Aug 2011 B2
8026771 Kanai et al. Sep 2011 B2
8037755 Nagata et al. Oct 2011 B2
8113050 Acar et al. Feb 2012 B2
8171792 Sameshima May 2012 B2
8201449 Ohuchi et al. Jun 2012 B2
8250921 Nasiri et al. Aug 2012 B2
8256290 Mao Sep 2012 B2
8375789 Prandi et al. Feb 2013 B2
8378756 Huang et al. Feb 2013 B2
8421168 Allen et al. Apr 2013 B2
8476970 Mokhtar et al. Jul 2013 B2
8497746 Visconti et al. Jul 2013 B2
8508290 Elsayed et al. Aug 2013 B2
8643382 Steele et al. Feb 2014 B2
8710599 Marx et al. Apr 2014 B2
8739626 Acar Jun 2014 B2
8742964 Kleks et al. Jun 2014 B2
8754694 Opris et al. Jun 2014 B2
8763459 Brand et al. Jul 2014 B2
8813564 Acar Aug 2014 B2
8978475 Acar Mar 2015 B2
9003882 Ayazi et al. Apr 2015 B1
9006846 Bryzek et al. Apr 2015 B2
9062972 Acar et al. Jun 2015 B2
9069006 Opris et al. Jun 2015 B2
9094027 Tao et al. Jul 2015 B2
9095072 Bryzek et al. Jul 2015 B2
9156673 Bryzek et al. Oct 2015 B2
20020021059 Knowles et al. Feb 2002 A1
20020083757 Geen Jul 2002 A1
20020117728 Brosnihhan et al. Aug 2002 A1
20020178831 Takada Dec 2002 A1
20020189352 Reeds, III et al. Dec 2002 A1
20020196445 Mcclary et al. Dec 2002 A1
20030033850 Challoner et al. Feb 2003 A1
20030038415 Anderson et al. Feb 2003 A1
20030061878 Pinson Apr 2003 A1
20030200807 Hulsing, II Oct 2003 A1
20030222337 Stewart Dec 2003 A1
20040051508 Hamon et al. Mar 2004 A1
20040085784 Salama et al. May 2004 A1
20040088127 M'closkey et al. May 2004 A1
20040119137 Leonardi et al. Jun 2004 A1
20040177689 Cho et al. Sep 2004 A1
20040211258 Geen Oct 2004 A1
20040219340 McNeil et al. Nov 2004 A1
20040231420 Xie et al. Nov 2004 A1
20040251793 Matsuhisa Dec 2004 A1
20050005698 McNeil et al. Jan 2005 A1
20050097957 Mcneil et al. May 2005 A1
20050139005 Geen Jun 2005 A1
20050189635 Humpston et al. Sep 2005 A1
20050274181 Kutsuna et al. Dec 2005 A1
20060032308 Acar et al. Feb 2006 A1
20060034472 Bazarjani et al. Feb 2006 A1
20060043608 Bernier et al. Mar 2006 A1
20060097331 Hattori May 2006 A1
20060112764 Higuchi Jun 2006 A1
20060137457 Zdeblick Jun 2006 A1
20060207328 Zarabadi et al. Sep 2006 A1
20060213265 Weber et al. Sep 2006 A1
20060213266 French et al. Sep 2006 A1
20060213268 Asami et al. Sep 2006 A1
20060246631 Lutz et al. Nov 2006 A1
20060283245 Konno et al. Dec 2006 A1
20070013052 Zhe et al. Jan 2007 A1
20070034005 Acar et al. Feb 2007 A1
20070040231 Harney et al. Feb 2007 A1
20070042606 Wang et al. Feb 2007 A1
20070047744 Harney et al. Mar 2007 A1
20070071268 Harney et al. Mar 2007 A1
20070085544 Viswanathan Apr 2007 A1
20070099327 Hartzell et al. May 2007 A1
20070113653 Nasiri et al. May 2007 A1
20070114643 DCamp et al. May 2007 A1
20070165888 Weigold Jul 2007 A1
20070205492 Wang Sep 2007 A1
20070214883 Durante et al. Sep 2007 A1
20070220973 Acar Sep 2007 A1
20070222021 Yao Sep 2007 A1
20070284682 Laming et al. Dec 2007 A1
20080049230 Chin et al. Feb 2008 A1
20080079120 Foster et al. Apr 2008 A1
20080079444 Denison Apr 2008 A1
20080081398 Lee et al. Apr 2008 A1
20080083958 Wei et al. Apr 2008 A1
20080083960 Chen et al. Apr 2008 A1
20080092652 Acar Apr 2008 A1
20080122439 Burdick et al. May 2008 A1
20080157238 Hsiao Jul 2008 A1
20080157301 Ramakrishna et al. Jul 2008 A1
20080169811 Viswanathan Jul 2008 A1
20080202237 Hammerschmidt Aug 2008 A1
20080245148 Fukumoto Oct 2008 A1
20080247585 Leidl et al. Oct 2008 A1
20080251866 Belt et al. Oct 2008 A1
20080290756 Huang Nov 2008 A1
20080302559 Leedy Dec 2008 A1
20080314147 Nasiri et al. Dec 2008 A1
20090007661 Nasiri et al. Jan 2009 A1
20090056443 Netzer Mar 2009 A1
20090064780 Coronato et al. Mar 2009 A1
20090064781 Ayazi et al. Mar 2009 A1
20090072663 Ayazi et al. Mar 2009 A1
20090114016 Nasiri et al. May 2009 A1
20090140606 Huang Jun 2009 A1
20090166827 Foster et al. Jul 2009 A1
20090175477 Suzuki et al. Jul 2009 A1
20090183570 Acar et al. Jul 2009 A1
20090194829 Chung et al. Aug 2009 A1
20090217757 Nozawa Sep 2009 A1
20090263937 Ramakrishna et al. Oct 2009 A1
20090266163 Ohuchi et al. Oct 2009 A1
20090272189 Acar et al. Nov 2009 A1
20100019393 Hsieh et al. Jan 2010 A1
20100024548 Cardarelli Feb 2010 A1
20100038733 Minervini Feb 2010 A1
20100044853 Dekker et al. Feb 2010 A1
20100052082 Lee Mar 2010 A1
20100058864 Hsu et al. Mar 2010 A1
20100072626 Theuss et al. Mar 2010 A1
20100089154 Ballas et al. Apr 2010 A1
20100122579 Hsu et al. May 2010 A1
20100126269 Coronato et al. May 2010 A1
20100155863 Weekamp Jun 2010 A1
20100206074 Yoshida et al. Aug 2010 A1
20100212425 Hsu et al. Aug 2010 A1
20100224004 Suminto et al. Sep 2010 A1
20100236327 Mao et al. Sep 2010 A1
20100263445 Hayner et al. Oct 2010 A1
20100294039 Geen Nov 2010 A1
20110023605 Tripoli et al. Feb 2011 A1
20110030473 Acar Feb 2011 A1
20110030474 Kuang et al. Feb 2011 A1
20110031565 Marx et al. Feb 2011 A1
20110074389 Knierim et al. Mar 2011 A1
20110094302 Schofield et al. Apr 2011 A1
20110120221 Yoda May 2011 A1
20110121413 Allen et al. May 2011 A1
20110146403 Rizzo Piazza Roncoroni et al. Jun 2011 A1
20110147859 Tanaka et al. Jun 2011 A1
20110179868 Kaino et al. Jul 2011 A1
20110201197 Nilsson et al. Aug 2011 A1
20110234312 Lachhwani et al. Sep 2011 A1
20110265564 Acar et al. Nov 2011 A1
20110285445 Huang et al. Nov 2011 A1
20110316048 Ikeda et al. Dec 2011 A1
20120126349 Horning et al. May 2012 A1
20120326248 Daneman et al. Dec 2012 A1
20130098153 Trusov et al. Apr 2013 A1
20130139591 Acar Jun 2013 A1
20130139592 Acar Jun 2013 A1
20130192364 Acar Aug 2013 A1
20130192369 Acar et al. Aug 2013 A1
20130199263 Egretzberger et al. Aug 2013 A1
20130221457 Conti et al. Aug 2013 A1
20130247666 Acar Sep 2013 A1
20130247668 Bryzek Sep 2013 A1
20130250532 Bryzek et al. Sep 2013 A1
20130257487 Opris et al. Oct 2013 A1
20130263641 Opris et al. Oct 2013 A1
20130263665 Opris et al. Oct 2013 A1
20130265070 Kleks et al. Oct 2013 A1
20130265183 Kleks et al. Oct 2013 A1
20130268227 Opris et al. Oct 2013 A1
20130268228 Opris et al. Oct 2013 A1
20130269413 Tao et al. Oct 2013 A1
20130270657 Acar et al. Oct 2013 A1
20130270660 Bryzek et al. Oct 2013 A1
20130271228 Tao et al. Oct 2013 A1
20130277772 Bryzek et al. Oct 2013 A1
20130277773 Bryzek et al. Oct 2013 A1
20130283911 Ayazi et al. Oct 2013 A1
20130328139 Acar Dec 2013 A1
20130341737 Bryzek et al. Dec 2013 A1
20140070339 Marx Mar 2014 A1
20140275857 Toth et al. Sep 2014 A1
20150059473 Jia Mar 2015 A1
20150114112 Valzasina et al. Apr 2015 A1
20150185012 Acar Jul 2015 A1
Foreign Referenced Citations (163)
Number Date Country
1068444 Jan 1993 CN
1198587 Nov 1998 CN
1206110 Jan 1999 CN
1221210 Jun 1999 CN
1272622 Nov 2000 CN
1389704 Jan 2003 CN
1532524 Sep 2004 CN
1595062 Mar 2005 CN
1595063 Mar 2005 CN
1603842 Apr 2005 CN
1617334 May 2005 CN
1659810 Aug 2005 CN
1693181 Nov 2005 CN
1813192 Aug 2006 CN
1816747 Aug 2006 CN
1818552 Aug 2006 CN
1886669 Dec 2006 CN
1905167 Jan 2007 CN
1948906 Apr 2007 CN
101038299 Sep 2007 CN
101059530 Oct 2007 CN
101067555 Nov 2007 CN
101069099 Nov 2007 CN
101171665 Apr 2008 CN
101180516 May 2008 CN
101217263 Jul 2008 CN
101239697 Aug 2008 CN
101257000 Sep 2008 CN
101270988 Sep 2008 CN
101316462 Dec 2008 CN
101329446 Dec 2008 CN
101426718 May 2009 CN
101459866 Jun 2009 CN
101519183 Sep 2009 CN
101520327 Sep 2009 CN
101561275 Oct 2009 CN
101634662 Jan 2010 CN
101638211 Feb 2010 CN
101813480 Aug 2010 CN
101839718 Sep 2010 CN
101055180 Oct 2010 CN
101858928 Oct 2010 CN
101916754 Dec 2010 CN
101922934 Dec 2010 CN
201688848 Dec 2010 CN
102109345 Jun 2011 CN
102337541 Feb 2012 CN
102364671 Feb 2012 CN
102597699 Jul 2012 CN
103209922 Jul 2013 CN
103210278 Jul 2013 CN
103221331 Jul 2013 CN
103221332 Jul 2013 CN
103221333 Jul 2013 CN
103221778 Jul 2013 CN
103221779 Jul 2013 CN
103221795 Jul 2013 CN
103238075 Aug 2013 CN
103363969 Oct 2013 CN
103363983 Oct 2013 CN
103364590 Oct 2013 CN
103364593 Oct 2013 CN
103368503 Oct 2013 CN
103368562 Oct 2013 CN
103368577 Oct 2013 CN
103376099 Oct 2013 CN
103376102 Oct 2013 CN
103403495 Nov 2013 CN
203275441 Nov 2013 CN
203275442 Nov 2013 CN
203301454 Nov 2013 CN
203349832 Dec 2013 CN
203349834 Dec 2013 CN
103663344 Mar 2014 CN
203683082 Jul 2014 CN
203719664 Jul 2014 CN
104094084 Oct 2014 CN
104105945 Oct 2014 CN
104220840 Dec 2014 CN
104272062 Jan 2015 CN
112011103124 Dec 2013 DE
102013014881 Mar 2014 DE
1055910 Nov 2000 EP
1460380 Sep 2004 EP
1521086 Apr 2005 EP
1688705 Aug 2006 EP
1832841 Sep 2007 EP
1860402 Nov 2007 EP
2053413 Apr 2009 EP
2096759 Sep 2009 EP
2259019 Dec 2010 EP
2466257 Jun 2012 EP
0989927 Apr 1997 JP
09089927 Apr 1997 JP
10239347 Sep 1998 JP
1164002 Mar 1999 JP
2000046560 Feb 2000 JP
2005024310 Jan 2005 JP
2005114394 Apr 2005 JP
2005294462 Oct 2005 JP
3882972 Feb 2007 JP
2007024864 Feb 2007 JP
2008294455 Dec 2008 JP
2009075097 Apr 2009 JP
2009186213 Aug 2009 JP
2009192458 Aug 2009 JP
2010025898 Feb 2010 JP
2010506182 Feb 2010 JP
1020110055449 May 2011 KR
1020130052652 May 2013 KR
1020130052653 May 2013 KR
1020130054441 May 2013 KR
1020130055693 May 2013 KR
1020130057485 May 2013 KR
1020130060338 Jun 2013 KR
1020130061181 Jun 2013 KR
101311966 Sep 2013 KR
1020130097209 Sep 2013 KR
101318810 Oct 2013 KR
102013011621 Oct 2013 KR
1020130037462 Oct 2013 KR
1020130112789 Oct 2013 KR
1020130112792 Oct 2013 KR
1020130112804 Oct 2013 KR
1020130113385 Oct 2013 KR
1020130113386 Oct 2013 KR
1020130113391 Oct 2013 KR
1020130116189 Oct 2013 KR
101332701 Nov 2013 KR
1020130139914 Dec 2013 KR
1020130142116 Dec 2013 KR
101352827 Jan 2014 KR
1020140034713 Mar 2014 KR
I255341 May 2006 TW
WO-9311415 Jun 1993 WO
WO-9503534 Feb 1995 WO
WO-0107875 Feb 2001 WO
WO-0175455 Oct 2001 WO
WO-2008059757 May 2008 WO
WO-2008087578 Jul 2008 WO
WO-2009050578 Apr 2009 WO
WO-2009156485 Dec 2009 WO
WO-2011016859 Feb 2011 WO
WO-2011016859 Feb 2011 WO
WO-2011107542 Sep 2011 WO
WO-2012037492 Mar 2012 WO
WO-2012037492 Mar 2012 WO
WO-2012037501 Mar 2012 WO
WO-2012037501 Mar 2012 WO
WO-2012037536 Mar 2012 WO
WO-2012037537 Mar 2012 WO
WO-2012037538 Mar 2012 WO
WO-2012037539 Mar 2012 WO
WO-2012037539 Mar 2012 WO
WO-2012037540 Mar 2012 WO
WO-2012040194 Mar 2012 WO
WO-2012040211 Mar 2012 WO
WO-2012040245 Mar 2012 WO
WO-2012040245 Mar 2012 WO
WO-2013115967 Aug 2013 WO
WO-2013116356 Aug 2013 WO
WO-2013116514 Aug 2013 WO
WO-2013116522 Aug 2013 WO
Non-Patent Literature Citations (298)
Entry
“U.S. Appl. No. 13/363,537, Final Office Action mailed Jun. 27, 2014”, 8 pgs.
“U.S. Appl. No. 13/742,942, Notice of Allowance mailed Jan. 28, 2014”, 8 pgs.
“U.S. Appl. No. 13/755,841, Supplemental Notice of Allowability Jun. 27, 2014”, 2 pgs.
“U.S. Appl. No. 13/821,589, Non Final Office Action mailed Jul. 9, 2014”, 10 pgs.
“U.S. Appl. No. 13/821,589, Response to Restriction Requirement mailed Apr. 11, 2014”, 6 pgs.
“U.S. Appl. No. 13/821,598, Restriction Requirement mailed Aug. 15, 2014”, 11 pgs.
“U.S. Appl. No. 13/821,612, Non Final Office Action mailed Jul. 23, 2014”, 8 pgs.
“U.S. Appl. No. 13/821,853, Non Final Office Action mailed Jul. 30, 2014”, 10 pgs.
“U.S. Appl. No. 13/860,761, Non Final Office Action mailed Aug. 19, 2014”, 13 pgs.
“Chinese Application Serial No. 2010800423190, Response filed Aug. 11, 2014 to Office Action mailed Mar. 26, 2014”, w/English Claims, 11 pgs.
“Chinese Application Serial No. 201180054796.3, Response filed Jun. 30, 2014 to Office Action mailed Jan. 16, 2014”, w/English Claims, 3 pgs.
“Chinese Application Serial No. 201180055029.4, Office Action mailed Jul. 2, 2014”, w/English Translation, 5 pgs.
“Chinese Application Serial No. 201180055309.5, Response filed Aug. 13, 2014 to Office Action mailed Mar. 31, 2014”, w/English Claims, 27 pgs.
“Chinese Application Serial No. 201380007588.7, Notification to Make Rectification mailed Aug. 18, 2014”, 2 pgs.
“Chinese Application Serial No. 201380007615.0, Notification to Make Rectification mailed Aug. 18, 2014”, 2 pgs.
“European Application Serial No. 10806751.3, Response filed Jul. 24, 2014 to Office Action mailed Jan. 24, 2014”, 26 pgs.
“European Application Serial No. 11826068.6, Extended European Search Report mailed Jul. 24, 2014”, 10 pgs.
“European Application Serial No. 13001719.7, Extended European Search Report mailed Jun. 24, 2014”, 10 pgs.
“International Application Serial No. PCT/US2013/021411, International Preliminary Report on Patentability mailed Aug. 14, 2014”, 7 pgs.
“International Application Serial No. PCT/US2013/023877, International Preliminary Report on Patentability mailed Aug. 14, 2014”, 7 pgs.
“International Application Serial No. PCT/US2013/024138, International Preliminary Report on Patentability mailed Aug. 14, 2014”, 6 pgs.
“International Application Serial No. PCT/US2013/024149, International Preliminary Report on Patentability mailed Aug. 14, 2014”, 6 pgs.
Xia, Guo-Ming, et al., “Phase correction in digital self-oscillation drive circuit for improve silicon MEMS gyroscope bias stability”, Solid-State and Integrated Circuit Technology (ICSICT), 2010 10th IEEE International Conference on, IEEE, (Nov. 1, 2010), 1416-1418.
“U.S. Appl. No. 13/362,955, Final Office Action mailed Nov. 19, 2014”, 5 pgs.
“U.S. Appl. No. 13/362,955, Response filed Aug. 15, 2014 to Non Final Office Action mailed May 15, 2014”, 13 pgs.
“U.S. Appl. No. 13/363,537, Examiner Interview Summary mailed Sep. 29, 2014”, 3 pgs.
“U.S. Appl. No. 13/363,537, Notice of Allowance mailed Nov. 7, 2014”, 5 pgs.
“U.S. Appl. No. 13/363,537, Response filed Sep. 29, 2014 to Final Office Action mailed Jun. 27, 2014”, 9 pgs.
“U.S. Appl. No. 13/821,586, Response filed Nov. 24, 2014 to Restriction Requirement mailed Sep. 22, 2014”, 6 pgs.
“U.S. Appl. No. 13/821,586, Restriction Requirement mailed Sep. 22, 2014”, 4 pgs.
“U.S. Appl. No. 13/821,589, Response filed Nov. 10, 2014 to Non Final Office Action mailed Jul. 9, 2014”, 15 pgs.
“U.S. Appl. No. 13/821,598, Non Final Office Action mailed Nov. 20, 2014”, 9 pgs.
“U.S. Appl. No. 13/821,598, Response filed Oct. 15, 2014 to Restriction Requirement mailed Aug. 15, 2014”, 8 pgs.
“U.S. Appl. No. 13/821,612, Response filed Oct. 23, 2014 to Non Final Office Action mailed Jul. 23, 2014”, 6 pgs.
“Chinese Application Serial No. 201180054796.3, Office Action mailed Sep. 4, 2014”, w/English Claims, 11 pgs.
“Chinese Application Serial No. 201180055029.4, Response filed Nov. 14, 2014 to Office Action mailed Jul. 2, 2014”, w/English Claims, 23 pgs.
“Chinese Application Serial No. 201310118845.6, Office Action mailed Sep. 9, 2014”, 8 pgs.
“Chinese Application Serial No. 201310119472.4, Office Action mailed Sep. 9, 2014”, w/English Translation, 11 pgs.
“European Application Serial No. 11826043.9, Office Action mailed May 6, 2013”, 2 pgs.
“European Application Serial No. 11826043.9, Response filed Nov. 4, 2013 to Office Action mailed May 6, 2013”, 6 pgs.
“European Application Serial No. 11826067.8, Extended European Search Report mailed Oct. 6, 2014”, 10 pgs.
“European Application Serial No. 11826070.2, Response filed Sep. 19, 2014 to Office Action mailed Mar. 12, 2014”, 11 pgs.
“European Application Serial No. 11826071.0, Response filed Sep. 19, 2014 to Office Action mailed Mar. 12, 2014”, 20 pgs.
“European Application Serial No. 11827347.3, Office Action mailed May 2, 2013”, 6 pgs.
“European Application Serial No. 11827347.3, Response filed Oct. 30, 2013 to Office Action mailed May 2, 2013”, 9 pgs.
“European Application Serial No. 11827384.6, Extended European Search Report mailed Nov. 12, 2014”, 6 pgs.
“European Application Serial No. 13001695.9, European Search Report mailed Oct. 5, 2014”, 6 pgs.
Dunn, C, et al., “Efficient linearisation of sigma-delta modulators using single-bit dither”, Electronics Letters 31(12), (Jun. 1995), 941-942.
Kulah, Haluk, et al., “Noise Analysis and Characterization of a Sigma-Delta Capacitive Microaccelerometer”, 12th International Conference on Solid State Sensors, Actuators and Microsystems, (2003), 95-98.
Sherry, Adrian, et al., “AN-609 Application Note: Chopping on Sigma-Delta ADCs”, Analog Devices, [Online]. Retrieved from the Internet: <URL: http://www.analog.com/static/imported-files/application—notes/AN-609.pdf>, (2003), 4 pgs.
“U.S. Appl. No. 12/849,742, Notice of Allowance mailed Nov. 29, 2013”, 7 pgs.
“U.S. Appl. No. 12/849,787, Notice of Allowance mailed Dec. 11, 2013”, 9 pgs.
“U.S. Appl. No. 13/362,955, Response filed Feb. 17, 2013 to Restriction Requirement mailed Dec. 17, 2013”, 9 pgs.
“U.S. Appl. No. 13/362,955, Restriction Requirement mailed Dec. 17, 2013”, 6 pgs.
“U.S. Appl. No. 13/363,537, Non Final Office Action mailed Feb. 6, 2014”, 10 pgs.
“U.S. Appl. No. 13/742,942, Notice of Allowance mailed Jan. 28, 2014”, 9 pgs.
“U.S. Appl. No. 13/746,016, Notice of Allowance mailed Jan. 17, 2014”, 10 pgs.
“U.S. Appl. No. 13/755,841, Restriction Requirement mailed Feb. 21, 2014”, 6 pgs.
“Chinese Application Serial No. 201180053926.1, Office Action mailed Jan. 13, 2014”, 7 pgs.
“Chinese Application Serial No. 201180054796.3, Office Action mailed Jan. 16, 2014”, 8 pgs.
“Chinese Application Serial No. 201180055029.4, Office Action mailed Jan. 13, 2014”, 7 pgs.
“Chinese Application Serial No. 201320172366.8, Office Action mailed Oct. 25, 2013”, 8 pgs.
“Chinese Application Serial No. 201320172366.8, Response filed Dec. 24, 2013 to Office Action mailed Oct. 25, 2013”, 11 pgs.
“Chinese Application Serial No. 201320565239.4, Office Action mailed Jan. 16, 2014”, w/English Translation, 3 pgs.
“European Application Serial No. 10806751.3, Extended European Search Report mailed Jan. 7, 2014”, 7 pgs.
“Korean Application Serial No. 10-2013-0109990, Amendment filed Dec. 10, 2013”, 4 pgs.
“Korean Application Serial No. 10-2013-7009775, Office Action mailed Dec. 27, 2013”, 8 pgs.
“Korean Application Serial No. 10-2013-7009775, Response filed Oct. 29, 2013 to Office Action mailed Sep. 17, 2013”, w/English Claims, 23 pgs.
“Korean Application Serial No. 10-2013-7009777, Office Action mailed Jan. 27, 2014”, 5 pgs.
“Korean Application Serial No. 10-2013-7009777, Response filed Nov. 5, 2013 to Office Action mailed Sep. 17, 2013”, 11 pgs.
“Korean Application Serial No. 10-2013-7009788, Office Action mailed Dec. 27, 2013”, w/English Translation, 10 pgs.
“Korean Application Serial No. 10-2013-7009788, Response filed Oct. 29, 2013 to Office Action mailed Aug. 29, 2013”, w/English Claims, 22 pgs.
“U.S. Appl. No. 12/849,742, Response filed Sep. 30, 2013 to Non-Final Office Action mailed Mar. 28, 2013”, 12 pgs.
“U.S. Appl. No. 12/849,787, Response filed Oct. 28, 2013 to Non Final Office Action mailed May 28, 2013”, 12 pgs.
“Chinese Application Serial No. 201180053926.1, Amendment filed Aug. 21, 2013”, w/English Translation, 13 pgs.
“Chinese Application Serial No. 201180055309.5, Voluntary Amendment filed Aug. 23, 2013”, w/English Translation, 13 pgs.
“Chinese Application Serial No. 201320165465.3, Office Action mailed Jul. 22, 2013”, w/English Translation, 2 pgs.
“Chinese Application Serial No. 201320165465.3, Response filed Aug. 7, 2013 to Office Action mailed Jul. 22, 2013”, w/English Translation, 39 pgs.
“Chinese Application Serial No. 201320171504.0, Office Action mailed Jul. 22, 2013”, w/English Translation, 3 pgs.
“Chinese Application Serial No. 201320171504.0, Response filed Jul. 25, 2013 to Office Action mailed Jul. 22, 2013”, w/English Translation, 33 pgs.
“Chinese Application Serial No. 201320171616.6, Office Action mailed Jul. 10, 2013”, w/English Translation, 2 pgs.
“Chinese Application Serial No. 201320171757.8, Office Action mailed Jul. 11, 2013”, w/English Translation, 2 pgs.
“Chinese Application Serial No. 201320171757.8, Response filed Jul. 25, 2013 to Office Action mailed Jul. 11, 2013”, w/English Translation, 21 pgs.
“Chinese Application Serial No. 201320171757.8, Response filed Jul. 26, 2013 to Office Action mailed Jul. 10, 2013”, w/English Translation, 40 pgs.
“Chinese Application Serial No. 201320172128.7, Office Action mailed Jul. 12, 2013”, w/English Translation, 3 pgs.
“Chinese Application Serial No. 201320172128.7, Response filed Aug. 7, 2013 to Office Action mailed Jul. 12, 2013”, w/English Translation, 39 pgs.
“Chinese Application Serial No. 201320172366.8, Office Action mailed Jul. 9, 2013”, w/English Translation, 3 pgs.
“Chinese Application Serial No. 201320172366.8, Response filed Sep. 16, 2013 to Office Action mailed Jul. 9, 2013”, w/English Translation, 24 pgs.
“Chinese Application Serial No. 201320172367.2, Office Action mailed Jul. 9, 2013”, w/English Translation, 2 pgs.
“Chinese Application Serial No. 201320172367.2, Response filed Sep. 16, 2013 to Office Action mailed Jul. 9, 2013”, w/English Translation, 24 pgs.
“Chinese Application Serial No. 201320185461.1, Office Action mailed Jul. 23, 2013”, w/English Translation, 3 pgs.
“Chinese Application Serial No. 201320185461.1, Response filed Sep. 10, 2013 to Office Action mailed Jul. 23, 2013”, w/English Translation, 25 pgs.
“Chinese Application Serial No. 201320186292.3, Office Action mailed Jul. 19, 2013”, w/English Translation, 2 pgs.
“Chinese Application Serial No. 201320186292.3, Response filed Sep. 10, 2013 to Office Action mailed Jul. 19, 2013”, w/English Translation, 23 pgs.
“European Application Serial No. 13001692.6, European Search Report mailed Jul. 24, 2013”, 5 pgs.
“European Application Serial No. 13001696.7, Extended European Search Report mailed Aug. 6, 2013”, 4 pgs.
“European Application Serial No. 13001721.3, European Search Report mailed Jul. 18, 2013”, 9 pgs.
“International Application Serial No. PCT/US2013/024138, International Search Report mailed May 24, 2013”, 3 pgs.
“International Application Serial No. PCT/US2013/024138, Written Opinion mailed May 24, 2013”, 4 pgs.
“Korean Application Serial No. 10-2013-7009775, Office Action mailed Sep. 17, 2013”, w/English Translation, 6 pgs.
“Korean Application Serial No. 10-2013-7009777, Office Action mailed Sep. 17, 2013”, w/English Translation, 8 pgs.
“Korean Application Serial No. 10-2013-7009788, Office Action mailed Aug. 29, 2013”, w/English Translation, 6 pgs.
“Korean Application Serial No. 10-2013-7009790, Office Action mailed Jun. 26, 2013”, W/English Translation, 7 pgs.
“Korean Application Serial No. 10-2013-7009790, Response filed Aug. 26, 2013 to Office Action mailed Jun. 26, 2013”, w/English Claims, 11 pgs.
“Korean Application Serial No. 10-2013-7010143, Office Action mailed May 28, 2013”, w/English Translation, 5 pgs.
“Korean Application Serial No. 10-2013-7010143, Response filed Jul. 24, 2013 to Office Action mailed May 28, 2013”, w/English Claims, 14 pgs.
Ferreira, Antoine, et al., “A Survey of Modeling and Control Techniques for Micro- and Nanoelectromechanical Systems”, IEEE Transactions on Systems, Man and Cybernetics-Part C: Applications and Reviews vol. 41, No. 3., (May 2011), 350-364.
Fleischer, Paul E, “Sensitivity Minimization in a Single Amplifier Biquad Circuit”, IEEE Transactions on Circuits and Systems. vol. Cas-23, No. 1, (1976), 45-55.
Reljin, Branimir D, “Properties of SAB filters with the two-pole single-zero compensated operational amplifier”, Circuit Theory and Applications: Letters to the Editor. vol. 10, (1982), 277-297.
Sedra, Adel, et al., “Chapter 8.9: Effect of Feedback on the Amplifier Poles”, Microelectronic Circuits, 5th edition, (2004), 836-864.
Song-Hee, Cindy Paik, “A MEMS-Based Precision Operational Amplifier”, Submitted to the Department of Electrical Engineering and Computer Sciences MIT, [Online]. Retrieved from the Internet: <URL: http://dspace.mit.edu/bitstream/handle/1721.1/16682/57138272.pdf? . . . >, (Jan. 1, 2004), 123 pgs.
“U.S. Appl. No. 12/849,787, Non Final Office Action mailed May 28, 2013”, 18 pgs.
“U.S. Appl. No. 12/947,543, Notice of Allowance mailed Dec. 17, 2012”, 11 pgs.
“U.S. Appl. No. 13/821,598, Preliminary Amendment mailed Mar. 8, 2013”, 7 pgs.
“U.S. Appl. No. 13/821,609, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“U.S. Appl. No. 13/821,619, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“Application Serial No. PCT/US2011/051994, International Republished Application mailed Jun. 7, 2012”, 1 pg.
“DigiSiMic™ Digital Silicon Microphone Pulse Part No. TC100E”, TC100E Datasheet version 4.2 DigiSiMic™ Digital Silicon Microphone. (Jan. 2009), 6 pgs.
“EPCOS MEMS Microphone With TSV”, 1 pg.
“International Application Serial No. PCT/US2011/051994, International Preliminary Report on Patentability mailed Mar. 28, 2013”, 8 pgs.
“International Application Serial No. PCT/US2011/052340, International Preliminary Report on Patentability mailed Apr. 4, 2013”, 5 pgs.
“International Application Serial No. PCT/US2011/052340, Search Report mailed Feb. 29, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052340, Written Opinion mailed Feb. 29, 2012” , 3 pgs.
“International Application Serial No. PCT/US2011/052369, International Preliminary Report on Patentability mailed Apr. 4, 2013”, 5 pgs.
“International Application Serial No. PCT/US2013/021411, International Search Report mailed Apr. 30, 2013”, 5 pgs.
“International Application Serial No. PCT/US2013/021411, Written Opinion mailed Apr. 30, 2013”, 5 pgs.
“International Application Serial No. PCT/US2013/023877, International Search Report mailed May 14, 2013”, 3 pgs.
“International Application Serial No. PCT/US2013/023877, Written Opinion mailed May 14, 2013”, 5 pgs.
“International Application Serial No. PCT/US2013/024149, Written Opinion mailed”, 4 pages.
“International Application Serial No. PCT/US2013/024149, International Search Report mailed”, 7 pages.
“T4020 & T4030 MEMS Microphones for Consumer Electronics”, Product Brief 2010, Edition Feb. 2010, 2 pgs.
Acar, Cenk, et al., “Chapter 4: Mechanical Design of MEMS Gyroscopes”, MEMS Vibratory Gyroscopes: Structural Approaches to Improve Robustness, Springer, (2009), 73-110.
Acar, Cenk, et al., “Chapter 6: Linear Multi DOF Architecture—Sections 6.4 and 6.5”, MEMS Vibratory Gyroscopes: Structural Approaches to Improve Robustness, Springer, (2009), 158-178.
Acar, Cenk, et al., “Chapter 7: Torsional Multi-DOF Architecture”, MEMS Vibratory Gyroscopes: Structural Approaches to Improve Robustness, Springer, (209), 187-206.
Acar, Cenk, et al., “Chapter 8: Distributed-Mass Architecture”, MEMS Vibratory Gyroscopes: Structural Approaches to Improve Robustness, Springer, (2009), 207-224.
Acar, Cenk, et al., “Chapter 9: Conclusions and Future Trends”, MEMS Vibratory Gyroscopes: Structural Approaches to Improve Robustness, Springer, (2009), 225-245.
Krishnamurthy, Rajesh, et al., “Drilling and Filling, but not in your Dentist's Chair a look at some recent history of multi-chip and through silicon via (TSV) technology”, Chip Design Magazine, (Oct./Nov. 2008), 7 pgs.
“U.S. Appl. No. 12/849,742, Non Final Office Action mailed Mar. 28, 2013”, 9 pgs.
“U.S. Appl. No. 12/849,742, Non Final Office Action mailed Aug. 23, 2012”, 9 pgs.
“U.S. Appl. No. 12/849,742, Response filed Jan. 23, 2012 to Non Final Office Action mailed Aug. 23, 2012”, 10 pgs.
“U.S. Appl. No. 12/849,787, Response filed Feb. 4, 2013 to Restriction Requirement mailed Oct. 4, 2012”, 7 pgs.
“U.S. Appl. No. 12/849,787, Restriction Requirement mailed Oct. 4, 2012”, 5 pgs.
“U.S. Appl. No. 13/821,586, Preliminary Amendment mailed Mar. 8, 2013”, 6 pgs.
“U.S. Appl. No. 13/821,589, Preliminary Amendment mailed Mar. 8, 2013”, 6 pgs.
“U.S. Appl. No. 13/821,612, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“U.S. Appl. No. 13/821,793, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“U.S. Appl. No. 13/821,842, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“U.S. Appl. No. 13/821,853, Preliminary Amendment mailed Mar. 8, 2013”, 3 pgs.
“Application Serial No. PCT/US2011/052006, International Republished Application mailed Jun. 7, 2012”, 1 pg.
“Application Serial No. PCT/US2011/052417, International Republished Application mailed Jun. 7, 2012”, 1 pg.
“International Application Serial No. PCT/US2010/002166, International Preliminary Report on Patentability mailed Feb. 16, 2012”, 6 pgs.
“International Application Serial No. PCT/US2010/002166, International Search Report mailed Feb. 28, 2011”, 3 pgs.
“International Application Serial No. PCT/US2010/002166, Written Opinion mailed Feb. 28, 2011”, 4 pgs.
“International Application Serial No. PCT/US2011/051994, International Search Report mailed Apr. 16, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/051994, Written Opinion mailed Apr. 16, 2012”, 6 pgs.
“International Application Serial No. PCT/US2011/052006, International Preliminary Report on Patentability mailed Mar. 28, 2013”, 7 pgs.
“International Application Serial No. PCT/US2011/052006, Search Report mailed Apr. 16, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052006, Written Opinion mailed Apr. 16, 2012”, 5 pgs.
“International Application Serial No. PCT/US2011/052059, International Preliminary Report on Patentability mailed Jan. 22, 2013”, 14 pgs.
“International Application Serial No. PCT/US2011/052059, Search Report mailed Apr. 20, 2012”, 4 pgs.
“International Application Serial No. PCT/US2011/052059, Written Opinion mailed Apr. 2012”, 7 pgs.
“International Application Serial No. PCT/US2011/052060, International Preliminary Report on Patentability mailed Jan. 22, 2013”, 12 pgs.
“International Application Serial No. PCT/US2011/052060, International Search Report Apr. 20, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052060, Written Opinion mailed Apr. 20, 2012”, 7 pgs.
“International Application Serial No. PCT/US2011/052061, International Preliminary Report on Patentability mailed Mar. 28, 2013”, 6 pgs.
“International Application Serial No. PCT/US2011/052061, International Search Report mailed Apr. 10, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052061, Written Opinion mailed Apr. 10, 2012”, 4 pgs.
“International Application Serial No. PCT/US2011/052064, International Preliminary Report on Patentability mailed Mar. 28, 2013”, 5 pgs.
“International Application Serial No. PCT/US2011/052064, Search Report mailed Feb. 29, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052064, Written Opinion mailed Feb. 29, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052065, International Preliminary Report on Patentability mailed Mar. 28, 2013”, 7 pgs.
“International Application Serial No. PCT/US2011/052065, International Search Report mailed Apr. 10, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052065, Written Opinion mailed Apr. 10, 2012”, 5 pgs.
“International Application Serial No. PCT/US2011/052369, International Search Report mailed Apr. 24, 2012”, 6 pgs.
“International Application Serial No. PCT/US2011/052369, Written Opinion mailed Apr. 24, 2012”, 3 pgs.
“International Application Serial No. PCT/US2011/052417, International Preliminary Report on Patentability mailed Apr. 4, 2013”, 6 pgs.
“International Application Serial No. PCT/US2011/052417, International Search Report mailed Apr. 23, 2012”, 5 pgs.
“International Application Serial No. PCT/US2011/052417, Written Opinion mailed Apr. 23, 2012”, 4 pgs.
Beyne, E, et al., “Through-silicon via and die stacking technologies for microsystems-integration”, IEEE International Electron Devices Meeting, 2008. IEDM 2008., (Dec. 2008), 1-4.
Cabruja, Enric, et al., “Piezoresistive Accelerometers for MCM-Package-Part II”, The Packaging Journal of Microelectromechanical Systems. vol. 14, No. 4, (Aug. 2005), 806-811.
Ezekwe, Chinwuba David, “Readout Techniques for High-Q Micromachined Vibratory Rate Gyroscopes”, Electrical Engineering and Computer Sciences University of California at Berkeley, Technical Report No. UCB/EECS-2007-176.html, (Dec. 21, 2007), 94 pgs.
Rimskog, Magnus, “Through Wafer Via Technology for MEMS and 3D Integration”, 32nd IEEE/CPMT International Electronic Manufacturing Technology Symposium, 2007. IEMT '07., (2007), 286-289.
“U.S. Appl. No. 12/849,742, Supplemental Notice of Allowability mailed Mar. 17, 2014”, 3 pgs.
“U.S. Appl. No. 12/849,742, Supplemental Notice of Allowability mailed May 5, 2014”, 2 pgs.
“U.S. Appl. No. 12/849,787, Supplemental Notice of Allowability mailed Mar. 21, 2014”, 3 pgs.
“U.S. Appl. No. 13/362,955, Non Final Office Action mailed Apr. 15, 2014”, 9 pgs.
“U.S. Appl. No. 13/363,537, Response filed Jun. 6, 2014 to Non Final Office Action mailed Feb. 6, 2014”, 11 pgs.
“U.S. Appl. No. 13/742,942, Supplemental Notice of Allowability mailed Apr. 10, 2014”, 2 pgs.
“U.S. Appl. No. 13/755,841, Notice of Allowance mailed May 7, 2014”, 8 pgs.
“U.S. Appl. No. 13/755,841, Preliminary Amendment filed Oct. 10, 2013”, 10 pgs.
“U.S. Appl. No. 13/755,841, Response filed Apr. 21, 2014 to Restriction Requirement mailed Feb. 21, 2014”, 7 pgs.
“U.S. Appl. No. 13/821,589, Restriction Requirement mailed Apr. 11, 2014”, 10 pgs.
“Chinese Application Serial No. 2010800423190, Office Action mailed Mar. 26, 2014”, 10 pgs.
“Chinese Application Serial No. 201180053926.1, Response filed Apr. 29, 2014 to Office Action mailed Jan. 13, 2014”, w/English Claims, 10 pgs.
“Chinese Application Serial No. 201180055029.4, Response filed May 27, 2014 to Office Action mailed Jan. 13, 2014”, w/English Claims, 29 pgs.
“Chinese Application Serial No. 201180055309.5, Office Action mailed Mar. 31, 2014”, w/English Claims, 7 pgs.
“Chinese Application Serial No. 201320172366.8, Office Action mailed Jan. 30, 2014”, w/English Claims, 3 pgs.
“Chinese Application Serial No. 201320172366.8, Response filed Mar. 18, 2014 to Office Action mailed Jan. 30, 2014”, w/English Claims, 20 pgs.
“Chinese Application Serial No. 201320565239.4, Response filed Mar. 31, 2014 to Office Action mailed Jan. 16, 2014”, w/English Claims, 38 pgs.
“European Application Serial No. 118260070.2, Office Action mailed Mar. 12, 2014”, 1 pg.
“European Application Serial No. 11826070.2, Extended European Search Report mailed Feb. 21, 2014”, 5 pgs.
“European Application Serial No. 11826071.0, Extended European Search Report mailed Feb. 20, 2014”, 6 pgs.
“European Application Serial No. 11826071.0, Office Action mailed Mar. 12, 2014”, 1 pg.
“European Application Serial No. 13001692.6, Response filed Apr. 1, 2014 to Extended European Search Report mailed Jul. 24, 2013”, 19 pgs.
“European Application Serial No. 13001721.3, Response filed Apr. 7, 2014 to Extended European Search Report mailed Jul. 18, 2013”, 25 pgs.
“Korean Application Serial No. 10-2013-7009777, Response filed Apr. 28, 2014”, w/English Claims, 19 pgs.
“U.S. Appl. No. 13/362,955, Notice of Allowance mailed Feb. 25, 2015”, 8 pgs.
“U.S. Appl. No. 13/362,955, Response filed Jan. 16, 2015 to Final Office Action mailed Nov. 19, 2014”, 9 pgs.
“U.S. Appl. No. 13/363,537, Corrected Notice of Allowance mailed Jan. 28, 2015”, 2 pgs.
“U.S. Appl. No. 13/742,994, Non Final Office Action mailed May 1, 2015”, 20 pgs.
“U.S. Appl. No. 13/755,953, Non Final Office Action mailed May 14, 2015”, 11 pgs.
“U.S. Appl. No. 13/755,953, Response filed May 4, 2015 to Restrictiion Requirement mailed Mar. 3, 2015”, 7 pgs.
“U.S. Appl. No. 13/755,953, Restriction Requirement mailed Mar. 3, 2015”, 6 pgs.
“U.S. Appl. No. 13/765,068, Notice of Allowance mailed May 7, 2015”, 12 pgs.
“U.S. Appl. No. 13/821,586, Non Final Office Action mailed Jan. 15, 2015”, 8 pgs.
“U.S. Appl. No. 13/821,586, Response filed May 15, 2015 to Non Final Office Action mailed Jan. 15, 2015”, 12 pgs.
“U.S. Appl. No. 13/821,589, Final Office Action mailed Mar. 12, 2015”, 13 pgs.
“U.S. Appl. No. 13/821,589, response filed May 12, 2015 to final office action mailed Mar. 12, 2015”, 12 pgs.
“U.S. Appl. No. 13/821,598, Response filed Feb. 20, 2015 to Non Final Office Action mailed Nov. 20, 2014”, 12 pgs.
“U.S. Appl. No. 13/821,609, Notice of Allowance mailed Mar. 23, 2015”, 11 pgs.
“U.S. Appl. No. 13/821,609, Response filed Feb. 13, 2015 to Restriction Requirement mailed Dec. 15, 2014”, 6 pgs.
“U.S. Appl. No. 13/821,609, Restriction Requirement mailed Dec. 15, 2014”, 7 pgs.
“U.S. Appl. No. 13/821,612, Notice of Allowance mailed Dec. 10, 2014”, 8 pgs.
“U.S. Appl. No. 13/821,842, Non Final Office Action mailed Mar. 18, 2015”, 20 pgs.
“U.S. Appl. No. 13/821,853, Non Final Office Action mailed Feb. 18, 2015”, 15 pgs.
“U.S. Appl. No. 13/821,853, Response filed May 18, 2015 to Non Final Office Action mailed Feb. 18, 2015”, 12 pgs.
“U.S. Appl. No. 13/821,853, Response filed Dec. 1, 2014 to Non Final Office Action mailed Jul. 30, 2014”, 10 pgs.
“U.S. Appl. No. 13/860,761, Advisory Action mailed Mar. 25, 2015”, 3 pgs.
“U.S. Appl. No. 13/860,761, Final Office Action mailed Jan. 15, 2015”, 14 pgs.
“U.S. Appl. No. 13/860,761, Notice of Allowance mailed Apr. 28, 2015”, 8 pgs.
“U.S. Appl. No. 13/860,761, Response filed Mar. 16, 2015 to Final Office Action mailed Jan. 16, 2015”, 12 pgs.
“U.S. Appl. No. 13/860,761, Response filed Apr. 16, 2015 to Advisory Action mailed Mar. 25, 2015”, 11 pgs.
“U.S. Appl. No. 13/860,761, Response filed Dec. 19, 2014 to Non Final Office Action mailed Aug. 19, 2014”, 12 pgs.
“U.S. Appl. No. 14/658,579, Prliminary Amendment filed Mar. 18, 2015”, 8 pgs.
“Chinese Application Serial No. 201180054796.3, Office Action mailed Jan. 30, 2015”, with English translation of claims, 5 pgs.
“Chinese Application Serial No. 201180054796.3, Response filed Nov. 19, 2014 to Office Action mailed Sep. 4, 2014”, with English translation of claims, 7 pgs.
“Chinese Application Serial No. 201180054796.3, Response filed Apr. 14, 2015 to Office Action mailed Jan. 30, 2015”, w/ English Claims, 30 pgs.
“Chinese Application Serial No. 201180055309.5, Office Action mailed Jan. 8, 2015”, with English translation of claims, 5 pgs.
“Chinese Application Serial No. 201180055630.3, Office Action mailed Dec. 22, 2014”, with English translation of claims, 10 pgs.
“Chinese Application Serial No. 201180055630.3, Response filed Apr. 20, 2015 to Office Action mailed Dec. 22, 2014”, w/ English Claims, 10 pgs.
“Chinese Application Serial No. 201180055792.7, Office Action mailed Dec. 22, 2014”, with English translation of claims, 10 pgs.
“Chinese Application Serial No. 201180055792.7, Response filed May 5, 2015 to Office Action mailed Dec. 22, 2014”, w/ English Claims, 15 pgs.
“Chinese Application Serial No. 201180055794.6, Office Action mailed Dec. 17, 2014”, with English translation of claims, 9 pgs.
“Chinese Application Serial No. 201180055794.6, Response filed May 4, 2015 to Office Action mailed Dec. 17, 2014”, w/ English Claims, 15 pgs.
“Chinese Application Serial No. 201180055823.9, Office Action mailed Mar. 19, 2015”, w/ English Claims, 8 pgs.
“Chinese Application Serial No. 201180055845.5, Office Action mailed Mar. 4, 2015”, w/ English Claims, 8 pgs.
“Chinese Application Serial No. 2013101188456, Response filed Jan. 21, 2015”, with English translation of claims, 16 pgs.
“Chinese Application Serial No. 201310119472.4, Response filed Jan. 21, 2015”, with English translation of claims, 16 pgs.
“Chinese Application Serial No. 201310119730.9, Office Action mailed May 4, 2015”, w/ English Claims, 8 pgs.
“Chinese Application Serial No. 201310127961.4, Office Action mailed May 6, 2015”, w/ English Claims, 7 pgs.
“Chinese Application Serial No. 201380007588.7, Response filed Oct. 24, 2014”, with English translation, 3 pgs.
“Chinese Application Serial No. 201380007615.0, Response filed Oct. 24, 2014”, with English translation, 3 pgs.
“European Application Serial No. 11826067.8, Response filed Apr. 27, 2015 to Extended European Search Report mailed Oct. 6, 2014”, 32 pgs.
“European Application Serial No. 11826068.6, Response filed Feb. 9, 2015”, 30 pgs.
“European Application Serial No. 11826071.0, Examination Notification Art. 94(3) mailed Dec. 11, 2014”, 4 pgs.
“European Application Serial No. 11826071.0, Response filed Apr. 13, 2015 to Examination Notification Art. 94(3) mailed Dec. 11, 2014”, 5 pgs.
“European Application Serial No. 13001695.9, Extended European Search Report mailed Jan. 22, 2015”, 8 pgs.
“European Application Serial No. 13001719.7, Response filed Jan. 21, 2015”, 29 pgs.
“U.S. Appl. No. 13/742,942, Supplemental Notice of Allowability mailed Apr. 10, 2014”, 3 pgs.
“U.S. Appl. No. 13/742,994, Response filed Jul. 31, 2015 to Non Final Office Action mailed May 1, 2015”, 12 pgs.
“U.S. Appl. No. 13/755,953, Response filed Sep. 15, 2015 to Non Final Office Action mailed May 14, 2015”, 10 pgs.
“U.S. Appl. No. 13/821,586, Notice of Allowance mailed Jun. 5, 2015”, 6 pgs.
“U.S. Appl. No. 13/821,589, Final Office Action mailed Jul. 17, 2015”, 14 pgs.
“U.S. Appl. No. 13/821,598, Non Final Office Action mailed Jul. 7, 2015”, 9 pgs.
“U.S. Appl. No. 13/821,598, Response filed Oct. 7, 2015 to Non Final Office Action mailed Jul. 7, 2015”, 10 pgs.
“U.S. Appl. No. 13/821,619, Ex Parte Quayle Action mailed Jul. 16, 2015”, 8 pgs.
“U.S. Appl. No. 13/821,619, Non Final Office Action mailed Oct. 13, 2015”, 11 pgs.
“U.S. Appl. No. 13/821,619, Response filed Sep. 16, 2015 to Ex Parte Quayle Action mailed Jul. 16, 2015”, 11 pgs.
“U.S. Appl. No. 13/821,793, Non Final Office Action mailed Jul. 27, 2015”, 14 pgs.
“U.S. Appl. No. 13/821,842, Examiner Interview Summary mailed Sep. 15, 2015”, 3 pgs.
“U.S. Appl. No. 13/821,842, Notice of Allowance Received mailed Sep. 15, 2015”, 13 pgs.
“U.S. Appl. No. 13/821,842, Response filed Jun. 18, 2015 Non Final Office Action mailed Mar. 18, 2015”, 11 pgs.
“U.S. Appl. No. 13/821,842, Supplemental Notice of Allowability mailed Sep. 28, 2015”, 2 pgs.
“U.S. Appl. No. 13/821,853, Final Office Action mailed Jun. 18, 2015”, 7 pgs.
“U.S. Appl. No. 13/857,349, Non Final Office Action mailed Oct. 8, 2015”, 10 pgs.
“U.S. Appl. No. 14/023,869, Non Final Office Action mailed Jun. 15, 2015”, 15 pgs.
“U.S. Appl. No. 14/658,579, Non Final Office Action mailed Jul. 1, 2015”, 9 pgs.
“U.S. Appl. No. 14/658,579, Response filed Oct. 1, 2015 to Non Final Office Action mailed Jul. 1, 2015”, 11 pgs.
“Chinese Application Serial No. 201180044919.5, Office Action mailed Jun. 25, 2015”, w/ English Translation, 8 pgs.
“Chinese Application Serial No. 201180054796.3, Office Action mailed Jun. 4, 2015”, w/ English Translation, 7 pgs.
“Chinese Application Serial No. 201180055630.3, Office Action mailed Jul. 10, 2015”, w/ English Claims, 8 pgs.
“Chinese Application Serial No. 201180055630.3, Response filed Sep. 25, 2015 to Office Action mailed Jul. 10, 2015”, w/ English Claims, 14 pgs.
“Chinese Application Serial No. 201180055792.7, Office Action mailed Jul. 21, 2015”, w/ English Translation, 5 pgs.
“Chinese Application Serial No. 201180055823.9,Response filed Aug. 3, 2015 to Office Action mailed Mar. 19, 2015”, w/ English Translation, 14 pgs.
“Chinese Application Serial No. 201180055845.5, Office Action mailed Aug. 5, 2015”, w/ English Translation, 5 pgs.
“Chinese Application Serial No. 201180055845.5,Response filed Jul. 13, 2015 to Office Action mailed Mar. 4, 2015”, w/ English Translation, 17 pgs.
“Chinese Application Serial No. 201310115550.3, Office Action mailed May 22, 2015”, w/ English Claims, 8 pgs.
“Chinese Application Serial No. 201310119806.8, Office Action mailed Jul. 3, 2015”, w/ English Claims, 12 pgs.
“Chinese Application Serial No. 201310119986.X, Office Action mailed May 12, 2015”, w/ English Claims, 14 pgs.
“Chinese Application Serial No. 201310127961.4, Response filed Sep. 2, 2015 to Office Action mailed May 6, 2015”, w/ English Claims, 19 pgs.
“Chinese Application Serial No. 201310128046.7, Office Action mailed Jul. 23, 2015”, w/ English Translation, 7 pgs.
“Chinese Application Serial No. 201310415336.X, Office Action mailed Jul. 3, 2015”, w/ English Claims, 9 pgs.
“Chinese Application Serial No. 201380007588.7, Office Action mailed Jun. 10, 2015”, w/ English Claims, 7 pgs.
“Chinese Application Serial No. 201380007615.0, Office Action mailed May 6, 2015”, w/ English Claims, 7 pgs.
“European Application Serial No. 11826069.4, Extended European Search Report mailed Jul. 23, 2015”, 8 pgs.
“European Application Serial No. 11827347.3, Extended European Search Report mailed Jul. 31, 2015”, 6 pgs.
“European Application Serial No. 11827357.2, Extended European Search Report mailed Aug. 26, 2015”, 4 pgs.
“European Application Serial No. 13001720.5, Extended European Search Report mailed Aug. 20, 2015”, 7 pgs.
Related Publications (1)
Number Date Country
20130298671 A1 Nov 2013 US
Provisional Applications (2)
Number Date Country
61384247 Sep 2010 US
61384512 Sep 2010 US