Nano fractal diffuser

Information

  • Patent Grant
  • 8248696
  • Patent Number
    8,248,696
  • Date Filed
    Thursday, June 25, 2009
    15 years ago
  • Date Issued
    Tuesday, August 21, 2012
    12 years ago
Abstract
A diffusive device has an array of discrete facets which may be of a size and pattern similar to a fractal. The facet dimensions can be greater than half the wavelength of incident light such that the facets substantially diffract light. A polarizing wire-grid layer comprised of an array of elongated parallel conductive wires with a period less than half the wavelength of incident light may be disposed between, beneath, or above the facets. The wire-grid polarizes the light by substantially reflecting light having an s-polarization orientation and substantially transmitting a portion of light having a p-polarization orientation.
Description
RELATED APPLICATION(S)/PATENT(S)

This is related to U.S. patent application Ser. No. 11/669,765, filed Jul. 19, 2007, which is hereby incorporated herein by reference in its entirety.


This is related to U.S. Pat. Nos. 6,081,376 and 6,348,995, which are hereby incorporated herein by reference in their entirety.


BACKGROUND

1. Field of the Invention


The present invention relates generally to optical diffusers including diffusive wire-grid polarizers.


2. Related Art


Wire-grid polarizers have been developed that are capable of polarizing light, i.e. separating one polarization orientation from another, by transmitting one polarization orientation and reflecting the other. Wire grid polarizers are a periodic structure of conductive elements with a length greater than the wavelength and a period (p) less than half the wavelength of the incident light, or p≦λ/2. Wire grid polarizers have been proven to be effective for visible light (˜300-700 nm, or ˜0.3-0.7 microns or μm) and their use demonstrated as polarizers and beam splitters in optical imaging systems. Typically, however, the reflection from, and the light passing through, such wire-grid polarizers, is specular, or mirror-like.


Wire-Grid polarizers are different from diffraction gratings, which are a periodic structure of dielectric material with a period (p) greater than half the wavelength (λ) of incident light, or p≧λ/2. The diffraction grating scatters the incident light at discrete angles or directions in accordance with mλ=p sin ⊖, where m is the order and ⊖ is the angle with respect to normal from the diffraction grating. Thus, different wavelengths are reflected or scattered at different angles.


Various different types of wire-grid polarizers have been proposed that include patterning the wires incurved lines, rather than strait lines; or forming the wires in a lattice structure with reinforcing members. See US Patent Application Publication US 2002/0167727 A2; and U.S. Pat. Nos. 6,972,906; 7,009,768; and PCT Application PCT/US2005/032656 (WO 2006/036546).


Other types of wire-grid polarizers have been proposed to diffusely reflect incident light that include contoured surfaces at different angles. See U.S. Pat. Nos. 6,081,376 and 6,348,995. Such polarizers, however, still specularly reflect, only from within several differently oriented textured surfaces.


Sometimes it is desirable to reflect all incident light or transmit most or all incident light in a diffuse manner. In this situation a diffuser is desired, but not a polarizing diffuser. One example of this situation would be a thermal window with a metallic film. Without a diffuser, a specular reflection would result from the building windows. Another need for diffuse light may be in an LCD display or a projector system.


SUMMARY OF THE INVENTION

It has been recognized that it would be advantageous to develop a wire-grid polarizer for polarizing incident light by diffusely transmitting one polarization orientation and diffusely reflection the other polarization orientation.


The invention provides a diffusive wire grid polarizer device including a common layer of conductive material with a uniform thickness disposed on a substrate. The layer defines an array of discrete, broad facets arrayed across the substrate. The facets have dimensions greater than half the wavelength of incident light. The facets substantially diffract both the s-polarized light and a portion of the p-polarized light incident on the facets. The facets also diffract the light that passes through the polarizer, which is comprised mostly of p-polarized light. In addition, the layer defines a wire-grid including an array of elongated parallel conductive wires. The array of wires fills spaces between the facets. The array of wires has a period less than half the wavelength of incident light to polarize the light by substantially reflecting light having an s-polarization orientation and substantially transmitting a portion of the light having a p-polarization orientation.


It has also been recognized that it would be advantageous to develop a non-polarizing diffuser to either transmit or reflect light diffusively. Another embodiment of the invention provides a diffuser device including at least one top layer and a bottom layer. The top layer(s) define at least one array of discrete, broad facets arrayed across the bottom layer. The facets have dimensions greater than half the wavelength of incident light. The facets substantially diffract the incident light. The diffuser device may transmit some or substantially all of the incoming light or it may reflect all of the incoming light in a diffuse manner.





BRIEF DESCRIPTION OF THE DRAWINGS

Additional features and advantages of the invention will be apparent from the detailed description which follows, taken in conjunction with the accompanying drawings, which together illustrate, by way of example, features of the invention; and, wherein:



FIG. 1 is a schematic top view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 2 is a schematic cross-sectional side view of the diffusive wire-grid polarizer of FIG. 1 taken along line 2-2 in FIG. 1;



FIG. 3 is a schematic partial perspective view of the diffusive wire-grid polarizer of FIG. 1;



FIGS. 4
a-f are schematic top views of various shaped facets;



FIG. 5 is a schematic top view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 6 is a schematic top view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 7 is a schematic top view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 8 is a schematic top view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 9 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 10 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 11 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 12 is a schematic partial perspective view a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 13 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 14 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 15 is a schematic cross-sectional side view of a diffusive wire-grid polarizer in accordance with an embodiment of the present invention;



FIG. 16 is a schematic top view of a diffuser in accordance with an embodiment of the present invention;



FIG. 17 is a schematic cross-sectional side view of the diffuser of FIG. 16 taken along line 17-17 in FIG. 16;



FIG. 18 is a schematic top view of a diffuser in accordance with an embodiment of the present invention;



FIG. 19 is a schematic cross-sectional side view of the diffuser of FIG. 18 taken along line 19-19 in FIG. 18;



FIG. 20 is a schematic top view of a diffuser in accordance with an embodiment of the present invention;



FIG. 21 is a schematic cross-sectional side view of the diffuser of FIG. 20 taken along line 21-21 in FIG. 20;



FIG. 22 is a schematic cross-sectional side view of a diffuser in accordance with an embodiment of the present invention





Reference will now be made to the exemplary embodiments illustrated, and specific language will be used herein to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended.


DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS

As illustrated in FIGS. 1-3, a diffusive wire-grid polarizer (WGP), indicated generally at 10, in an example implementation in accordance with the invention is shown. The diffusive WGP of the present invention can be used in situations in which non-specular, or non-mirror like, reflection of substantially one polarization orientation (namely a diffuse reflected beam 29 of s-polarization orientation) is desired of an incident beam 27. The diffusive WGP of the present invention can also be used in situations in which non-specular, or non-mirror like, transmission of substantially one polarization orientation (namely a diffuse transmitted beam 28 of p-polarization orientation) is desired of an incident beam 27. In such a situation, diffuse reflection or diffuse transmission may be more important than polarization contrast because the diffuse reflected beam 29 may also include a substantial amount of p-polarization orientation in addition to the s-polarization orientation. The incident beam 27 can be unpolarized, and can be visible light (or have one or more wavelengths in the range of ˜300-700 nm, or ˜0.3-0.7 microns or μm). Alternatively, the incident beam can be infrared or ultraviolet. In this patent application, light means ultraviolet, visible, or infrared.


The diffusive WGP 10 can include a substrate 26, such as glass, or another material that is substantially transparent to the incident light beam 27. Substrate 26 can be a single layer or can be multiple layers, with each layer made of the same material as, or different materials than, the other layers. Disposed on or over the substrate is a layer 25 of conductive material, such as aluminum or silver. The layer 25 can be deposited directly on the substrate. Alternatively, other layers can be disposed between the substrate 26 and the layer 25 of conductive material. The layer 25 can have a uniform and constant thickness t, and disposed over essentially the entire substrate.


The layer 25 can be patterned (such as by etching select areas) to form an array of facets 14a-d arrayed across the substrate. The facets can be made of multiple sizes in order to optimize light diffraction. The facets 14a-d extend essentially across the entire substrate with spaces or gaps 11 therebetween. The facets can be arranged in a fractal pattern. “Fractal” means geometrical structures whose shape appears to be the same regardless of the level of magnification used to view them. The facets 14a-d can have widths w1-4 or diameters and lengths L1-4 greater than a wavelength λ of incident light, or greater than half the wavelength of incident light (w>λ/2 and L>λ/2, where w is a width or diameter or dimension of the facets transverse to the wires, and L is a length of the facets transverse to the width). Thus, the facets substantially diffract both the s-polarized light and the p-polarized light incident on the facets, or the light having s-polarization orientation and p-polarization orientation. A majority or substantially all of the light having s-polarization orientation will be diffracted, or diffusely reflected; while a portion of the light having p-polarization orientation will be transmitted, or diffusely transmitted. The type of fractal pattern used and material of the layer 25 affect the amount of p-polarized light that is transmitted.


In addition, layer 25 can be patterned to form a wire-grid including an array of elongated parallel conductive wires 12 filling the spaces 11 between the facets 14a-d. Thus, the array of wires 12 extends across essentially the entire substrate. The facets 14a-d and the array of wires 12 can be formed together with each facet integral with the plurality of wires. The array of facets 14a-d interrupt and are interspersed through the array of wires 12. The plurality of facets interrupts the array of wires, and share a common layer.


The array of wires 12 has a period P less than half the wavelength λ/2 of incident light (PWGP<λ/2, where PWGP is the period of the wires, and λ is the wavelength of light incident on the wires). Thus, the array of wires at least partially polarizes the incident light 27 by substantially reflecting light 29 having an s-polarization orientation and substantially transmitting light 28 having a p-polarization orientation.


The array of wires and array of facets can be formed by lithography.


The facets 14a-d can have at least two different sizes with at least two different surface areas, such as four different facets with four different sizes and four different surface areas, as shown. The facets can have rectilinear shapes, such as square with the width and length of each facet being essentially equal, or on the same order of magnitude. As shown in FIG. 4a-f, the facets can also be circular 46, triangular 42, diamond shaped 43, polygonal 45, elliptical 44, irregular shaped 41, or other shape. Different shapes may be selected for improved optical performance or ease of manufacturability. Facet dimensions d1-9 are greater than a wavelength λ of incident light, or greater than half the wavelength of incident light (d>λ/2). Although most figures show square shaped facets, any shaped facet may be used in all invention embodiments. Although most figures show two to four different sized facets, any number of different sized facets may be used in all invention embodiments.



FIG. 1 shows square shaped facets 14a-d, with widths w1-4 transverse to the wires and lengths L1-4 transverse to the width, arranged in a fractal pattern. FIG. 5 shows a diffusive WGP, indicated generally at 50, in another example implementation in accordance with the invention. This diffusive WGP has square shaped facets 54a-d, arranged in a fractal pattern. While the width of the square shape is not orthogonal to the wires, and the length of the square shape is not parallel to the wires, the square shape has a diameter or dimension transverse to the wires that is greater than a wavelength λ of incident light, or greater than half the wavelength of incident light.



FIG. 6 shows a diffusive WGP, indicated generally at 60, in another example implementation in accordance with the invention. This diffusive WGP has triangular shaped facets 64a-d, arranged in a fractal pattern. As described above, the triangular shaped faces have a diameter or dimension (such as d3 or d4 of FIG. 4) transverse to the wires that is greater than a wavelength λ of incident light, or greater than half the wavelength of incident light. Different fractal patterns may be selected for improved optical performance or ease of manufacturability.


As illustrated in FIGS. 7-8, indicated generally at 70 and 80 respectively, fractal patterns different from that shown in FIGS. 1 and 6 may be used. In the example of FIG. 7, the wire gridded area 74 of the diffusive WGP 70 comprises a fractal pattern and the area between the fractal pattern 71 comprises facets 72. The facets 72 form distinct groups or areas 74 in the array of wires which include or define the fractal pattern, and can include at least sixteen facets with four different sizes arranged in a fractal pattern. The facets 72 can have the same shape. Alternatively, as shown in FIG. 8, the facets 84 of the diffusive WGP 80 may comprise a fractal pattern and the area between the fractal pattern 81 may comprise a wire grid. Optical properties, such as transmissivity or extinction, may be optimized by selection of the wire grid or facets to form a fractal pattern. In all embodiments of this invention, the facets or the wire grid may comprise a fractal.


As illustrated in FIG. 9, another diffusive wire-grid polarizer, shown generally at 90, has facets 94a-c disposed over a wire grid layer 92 with an array of elongated parallel conductive wires as described above. The facets 94a-c can be any material with the desired optical properties. Use of a transparent material for facets 94a-c can result in higher transmission of the p-polarized light. In this embodiment, the wire grid layer 92 can extend over all, or substantially all, of the surface of the substrate 26. To make such a device, a first layer 92 may be added to a substrate 26 by sputtering, chemical vapor deposition, evaporation, or other similar method. The first layer 92 may be patterned and etched to form the wire grid. Another layer 95 may be added on top of the wire grid layer by sputtering, chemical vapor deposition, evaporation, or other similar method. The top layer 95 may be patterned and etched to form the facets 94a-c. The facets may comprise a fractal pattern, as described above. The exposed wire grid, in areas where there are no facets, may comprise a fractal pattern, as described above. Different facets may all be etched to the same depth such that the facet thicknesses t1-3 are the same, as shown in FIG. 9. Different facets may be etched to different depths such that the facet thicknesses t1-3 are not the same. This may be done by use of separate masking and etching steps for different depth facets. Facets of different sizes or shapes help to create diffuse transmitted or reflected light. Facets of different depths also create diffuse transmitted or reflected light because the light travels through different thicknesses t1-3 of material.


As illustrated in FIG. 10, another diffusive wire-grid polarizer, shown generally at 100, has facets 104a-b disposed over the wire grid layer 92 in multiple layers. The facets 104a-b may be any material with the desired optical properties. There may be more than two layers of facets. All layers may be the same material or the layers of facets may be made of different materials. Multiple layers can provide improved light control and improved wavelength specificity. To make such a device, additional layer deposition, patterning, and etching steps can be used following making the basic structure 90 of FIG. 9.


As illustrated in FIG. 11, another diffusive wire-grid polarizer, shown generally at 110, has facets 114a-b disposed below the wire grid layer 92. To make such a device, a lower facet layer or multiple lower facet layers are added on top of the substrate 26 by deposition, patterning, and etching steps. Another layer 113 is then added on top of the facets. Layer 113 can be the same as the substrate 26 or can be a different material as shown by dividing line 111. A wire grid layer 92 and facet layers 114c-d may be added on top of layer 113. In a similar fashion, other layers 113b-c may be added on top to allow added wire grid layers 92b, facet layers, and/or combined facet plus wire grid layers 115. The facets 114a-d may be any material with the desired optical properties. This stacking of wire grid layers 92b, facet layers, and/or combined facet plus wire grid layers may apply to other embodiments of the invention. Multiple layers can provide improved light control and improved wavelength specificity.


As illustrated in FIG. 12, another diffusive wire-grid polarizer, shown generally at 120, has facets 124a created by etching away facet areas rather than by masking facet areas such as in FIGS. 1-2. In other embodiments of this invention, facets may also be created by etching the desired facet area and masking between facet areas. Thus, areas of the upper surface of the substrate without wires 12 can form the facets 124a. This embodiment can have an advantage of improved transmissivity.


As illustrated in FIG. 13, another diffusive wire-grid polarizer, shown generally at 130, has facets 134a-c formed by etching into the substrate 26 or into a layer 133 on top of the substrate. Layer 133 may be the same as the substrate 26 or may be a separate material separated at dashed line 131. Different facets may all be etched to the same depth (not shown but such that the etch depths or substrate thicknesses t2-4 at the facets are the same). Different facets may be etched to different depths, as shown, such that etch depths or substrate thicknesses t2-4 at the facets are not the same. This may be done by use of separate masking and etching steps for different depth facets. Facets of different sizes or shapes help to create diffuse transmitted or reflected light. Facets of different depths also create diffuse transmitted or reflected light because the light travels through different thicknesses t1-4 of material.


As illustrated in FIG. 14, another diffusive wire-grid polarizer, shown generally at 140, has thicknesses t2-4 of the substrate 26 beneath the facets 144a-c that are thicker than the thickness t1 of the substrate beneath the wire grid. This polarizer may be created by separate pattern and etch steps. For example, one pattern and etch step may be used to create facets of the thickness of facet 144b. A different pattern and etch step may be used to etch to the top of the desired wire grid 141. Another pattern and etch step may then be used to etch down to level 142 to create the wire grid 12. Facets of different thicknesses, as shown in FIGS. 13 & 14 may be used with other embodiments of the invention. Facets of different depths also create diffuse transmitted or reflected light because the light travels through different thicknesses t1-4 of material.


As illustrated in FIG. 15, another diffusive wire-grid polarizer, shown generally at 150, has a wire grid 153a-c disposed over facets in addition to the areas between the facets. This polarizer may be created by separate pattern and etch steps. For example, one pattern and etch step may be used to etch to the top of the desired wire grid 151. Another pattern and etch step may then be used to etch down to level 152 to create the wire grid 153b. Wire grids may be disposed over the facets of other invention embodiments. Use of wire grid over the facets can improve polarization contrast.


All of the previously described embodiments may be non-polarizing diffusers instead of diffusive wire grid polarizers through use of a non polarizing material, such as a non-conductive material, to make the wire grid layer. Alternatively, the following described embodiments are alternative non-polarizing diffusers.


As illustrated in FIGS. 16-17, a diffuser, shown generally at 160, has facets used to create a non-polarizing diffuser. This embodiment may be useful if diffuse, non-polarized light is desired. A diffuser has a substrate 176 which may be made of materials that are, or are not, transparent to the incoming light 27. If the substrate is not transparent (or is opaque), then substantially all of the incoming light 27 can be reflected diffusely 179. If the substrate is transparent, then some of the incoming light can be reflected diffusely 179 and some or substantially all can be transmitted diffusely 178. The reflected and transmitted light will not be polarized. To make this device 160, facet layer 175 is etched completely between the facets 11 rather than patterned to form wire grids. Because polarization is not desired, facet layer 175 can be substantially any material that will provide the desired optical properties. Facet layer 175 and the substrate 176 can be the same material or may be different materials. Facet layer 175 can be deposited directly on the substrate 176. Alternatively, other layers can be disposed between the substrate 176 and layer 175.


As illustrated in FIGS. 18-19, the facets 184a-d of another diffuser 180 are the locations that are cut into a layer or substrate rather than raised areas which were masked during etching. Facet layer 175 and substrate (or underlying layer) 176 may be the same, or facet layer 175 may be a different material from the substrate or underlying layer 176. Similar to the diffusive WGP 130 of FIG. 13, the thicknesses t2-5 may be the same or may be different. This diffuser 180 may be manufactured similarly to polarizer 130, except that no wire grids are formed. Facets of different sizes or shapes help to create diffuse transmitted or reflected light. Facets of different depths also create diffuse transmitted or reflected light because the light travels through different thicknesses t1-4 of material.


As illustrated in FIGS. 20-21, the facets 204a-d of another diffuser 200 are the locations that were masked during etching and thus are raised above surrounding etched locations. This diffuser 200 may be manufactured similarly to polarizer 140, except that no wire grids are formed. Facets of different sizes or shapes help to create diffuse transmitted or reflected light. Facets of different depths also create diffuse transmitted or reflected light because the light travels through different thicknesses t1-4 of material.


As illustrated in FIG. 22, the facets of another diffuser 220 may be disposed on top of other facets. Facets 224a-b may be any material with the desired optical properties. There may be more than two layers of facets. All layers may be the same material or the layers of facets may be made of different materials. This diffuser 220 may be manufactured similarly to polarizer 100, except that no wire grids are formed. Multiple layers can provide improved light control and improved wavelength specificity.


While the forgoing examples are illustrative of the principles of the present invention in one or more particular applications, it will be apparent to those of ordinary skill in the art that numerous modifications in form, usage and details of implementation can be made without the exercise of inventive faculty, and without departing from the principles and concepts of the invention. Accordingly, it is not intended that the invention be limited, except as by the claims set forth below.

Claims
  • 1. A diffusive wire grid polarizer device, comprising: a) a substrate having a top surface and a bottom surface;b) at least one layer disposed over the top surface of the substrate;c) a wire grid formed in one of the at least one layer including an array of elongated parallel conductive wires with PWGP<λ/2, where PWGP is the period of the wires, and λ is the wavelength of light incident on the wires, to polarize the light by substantially reflecting light having an s-polarization orientation and substantially transmitting light having a p-polarization orientation incident on the array;d) at least sixteen facets of at least two different sizes formed in one of the at least one layer with a facet dimension transverse to the wires greater than λ/2 to substantially diffract both s-polarized light and p-polarized light incident on the at least two facets; ande) the at least sixteen facets forming distinct groups arranged in a fractal pattern.
  • 2. A device as in claim 1, wherein the wire grid and the at least sixteen facets comprise a single layer such that the at least sixteen facets are interspersed through the array of wires and interrupt the array of wires.
  • 3. A device as in claim 1, wherein the at least sixteen facets form distinct groups in the array of wires with four different sizes arranged in the fractal pattern.
  • 4. A device as in claim 1, wherein the at least sixteen facets further includes four different sizes and four different surface areas.
  • 5. A device as in claim 1, wherein the at least one layer includes at least two layers with one of the at least two layers containing the wire grid and a different one of the at least two layers containing the at least sixteen facets.
  • 6. A device as in claim 5, wherein a distance from the bottom surface of the substrate to a top surface of at least one of the at least sixteen facets is different than a distance from the bottom surface of the substrate to a top surface of another of the at least sixteen facets.
  • 7. A device as in claim 1, wherein the at least one layer includes at least three layers, and wherein: a) one of the at least three layers contains a wire grid;b) a second of the at least three layers contains at least sixteen facets; andc) a third of the at least three layers contains at least sixteen facets.
  • 8. A device as in claim 1, wherein the at least one layer comprises: a) at least two layers of a wire grid; andb) at least three layers containing at least sixteen facets in each layer.
  • 9. A device as in claim 1, wherein the at least sixteen facets are a solid material surrounded by areas of the layer which have been removed.
  • 10. A device as in claim 1, wherein the at least sixteen facets are comprised of areas of the layer which have been removed, and are surrounded by areas of the layer which have not been removed.
  • 11. A device as in claim 1, wherein a distance from the bottom surface of the substrate to a top surface of at least one of the at least sixteen facets is different than a distance from the bottom surface of the substrate to a top surface of another of the at least sixteen facets.
  • 12. A device as in claim 1, wherein areas of the top surface of the substrate which is not covered with any of the at least sixteen facets is covered by the wire grid and the top surface of the at least sixteen facets is covered with the wire grid.
  • 13. A device as in claim 1, wherein tops of the wires and tops of the facets terminate in a common plane.
US Referenced Citations (484)
Number Name Date Kind
2224214 Brown Dec 1940 A
2237567 Land Apr 1941 A
2287598 Brown Jun 1942 A
2391451 Fischer Dec 1945 A
2403731 MacNeille Jul 1946 A
2605352 Fischer Jul 1952 A
2748659 Geffcken et al. Jun 1956 A
2813146 Glenn Nov 1957 A
2815452 Mertz Dec 1957 A
2887566 Marks May 1959 A
3046839 Bird et al. Jul 1962 A
3084590 Glenn, Jr. Apr 1963 A
3202039 Lang et al. Aug 1965 A
3213753 Rogers Oct 1965 A
3235630 Doherty et al. Feb 1966 A
3291550 Bird et al. Dec 1966 A
3291871 Francis Dec 1966 A
3293331 Doherty Dec 1966 A
3436143 Garrett Apr 1969 A
3479168 Bird et al. Nov 1969 A
3536373 Bird et al. Oct 1970 A
3566099 Makas Feb 1971 A
3627431 Komarniski Dec 1971 A
3631288 Rogers Dec 1971 A
3653741 Marks Apr 1972 A
3731986 Fergason May 1973 A
3857627 Harsch Dec 1974 A
3857628 Strong Dec 1974 A
3876285 Schwarzmüller Apr 1975 A
3877789 Marie Apr 1975 A
3912369 Kashnow Oct 1975 A
3969545 Slocum Jul 1976 A
4009933 Firester Mar 1977 A
4025164 Doriguzzi et al. May 1977 A
4025688 Nagy et al. May 1977 A
4049944 Garvin et al. Sep 1977 A
4068260 Ohneda et al. Jan 1978 A
4073571 Grinberg et al. Feb 1978 A
4104598 Abrams Aug 1978 A
4181756 Fergason Jan 1980 A
4220705 Sugibuchi et al. Sep 1980 A
4221464 Pedinoff et al. Sep 1980 A
4268127 Oshima et al. May 1981 A
4289381 Garvin et al. Sep 1981 A
4294119 Soldner Oct 1981 A
4308079 Venables et al. Dec 1981 A
4441791 Hornbeck Apr 1984 A
4456515 Krueger et al. Jun 1984 A
4466704 Schuler et al. Aug 1984 A
4492432 Kaufmann et al. Jan 1985 A
4512638 Sriram et al. Apr 1985 A
4514479 Ferrante Apr 1985 A
4515441 Wentz May 1985 A
4515443 Bly May 1985 A
4532619 Sugiyama et al. Jul 1985 A
4560599 Regen Dec 1985 A
4679910 Efron et al. Jul 1987 A
4688897 Grinberg et al. Aug 1987 A
4701028 Clerc et al. Oct 1987 A
4711530 Nakanowatari et al. Dec 1987 A
4712881 Shurtz, II et al. Dec 1987 A
4724436 Johansen et al. Feb 1988 A
4743092 Pistor May 1988 A
4743093 Oinen May 1988 A
4759611 Downey, Jr. Jul 1988 A
4759612 Nakatsuka et al. Jul 1988 A
4763972 Papuchon et al. Aug 1988 A
4795233 Chang Jan 1989 A
4799776 Yamazaki et al. Jan 1989 A
4818076 Heppke et al. Apr 1989 A
4840757 Blenkhorn Jun 1989 A
4865670 Marks Sep 1989 A
4870649 Bobeck et al. Sep 1989 A
4893905 Efron et al. Jan 1990 A
4895769 Land et al. Jan 1990 A
4904060 Grupp Feb 1990 A
4913529 Goldenberg et al. Apr 1990 A
4915463 Barbee, Jr. Apr 1990 A
4939526 Tsuda Jul 1990 A
4946231 Pistor Aug 1990 A
4966438 Mouchart et al. Oct 1990 A
4974941 Gibbons et al. Dec 1990 A
4991937 Urino Feb 1991 A
5029988 Urino Jul 1991 A
5039185 Uchida et al. Aug 1991 A
5061050 Ogura Oct 1991 A
5087985 Kitaura et al. Feb 1992 A
5092774 Milan Mar 1992 A
5113285 Franklin et al. May 1992 A
5115305 Baur May 1992 A
5122887 Mathewson Jun 1992 A
5122907 Slocum Jun 1992 A
5139340 Okumura Aug 1992 A
5157526 Kondo et al. Oct 1992 A
5163877 Marpert et al. Nov 1992 A
5177635 Keilmann Jan 1993 A
5196926 Lee Mar 1993 A
5196953 Yeh et al. Mar 1993 A
5198921 Aoshima et al. Mar 1993 A
5204765 Mitsui et al. Apr 1993 A
5206674 Puech et al. Apr 1993 A
5216539 Boher et al. Jun 1993 A
5225920 Kasazumi et al. Jul 1993 A
5235443 Barnik et al. Aug 1993 A
5235449 Imazeki et al. Aug 1993 A
5239322 Takanashi et al. Aug 1993 A
5245471 Iwatsuka et al. Sep 1993 A
5267029 Kurematsu Nov 1993 A
5279689 Shvartsman Jan 1994 A
5295009 Barnik et al. Mar 1994 A
5298199 Hirose et al. Mar 1994 A
5305143 Taga et al. Apr 1994 A
5325218 Willett et al. Jun 1994 A
5333072 Willett Jul 1994 A
5349192 Mackay Sep 1994 A
5357370 Miyatake et al. Oct 1994 A
5383053 Hegg et al. Jan 1995 A
5387953 Minoura et al. Feb 1995 A
5391091 Nations Feb 1995 A
5401587 Motohiro et al. Mar 1995 A
5422756 Weber Jun 1995 A
5430573 Araujo et al. Jul 1995 A
5436761 Kamon Jul 1995 A
5455589 Huguenin et al. Oct 1995 A
5466319 Zager et al. Nov 1995 A
5477359 Okazaki Dec 1995 A
5485499 Pew et al. Jan 1996 A
5486935 Kalmanash Jan 1996 A
5486949 Schrenk et al. Jan 1996 A
5490003 Van Sprang Feb 1996 A
5499126 Abileah et al. Mar 1996 A
5504603 Winker et al. Apr 1996 A
5506704 Broer et al. Apr 1996 A
5508830 Imoto et al. Apr 1996 A
5510215 Prince et al. Apr 1996 A
5513023 Fritz et al. Apr 1996 A
5513035 Miyatake et al. Apr 1996 A
5517356 Araujo et al. May 1996 A
5535047 Hornbeck Jul 1996 A
5548427 May Aug 1996 A
5555186 Shioya Sep 1996 A
5557343 Yamagishi Sep 1996 A
5559634 Weber Sep 1996 A
5570213 Ruiz et al. Oct 1996 A
5570215 Omae et al. Oct 1996 A
5574580 Ansley Nov 1996 A
5576854 Schmidt et al. Nov 1996 A
5579138 Sannohe et al. Nov 1996 A
5594561 Blanchard Jan 1997 A
5599551 Kelly Feb 1997 A
5600383 Hornbeck Feb 1997 A
5602661 Schadt et al. Feb 1997 A
5609939 Petersen et al. Mar 1997 A
5612820 Schrenk et al. Mar 1997 A
5614035 Nadkarni Mar 1997 A
5619352 Koch et al. Apr 1997 A
5619356 Kozo et al. Apr 1997 A
5620755 Smith, Jr. et al. Apr 1997 A
5626408 Heynderickx et al. May 1997 A
5638197 Gunning, III et al. Jun 1997 A
5652667 Kurogane Jul 1997 A
5658060 Dove Aug 1997 A
5686979 Weber et al. Nov 1997 A
5706063 Hong Jan 1998 A
5706131 Ichimura et al. Jan 1998 A
5719695 Heimbuch Feb 1998 A
5731246 Bakeman et al. Mar 1998 A
5748368 Tamada et al. May 1998 A
5748369 Yokota May 1998 A
5751388 Larson May 1998 A
5751466 Dowling et al. May 1998 A
5767827 Kobaysashi et al. Jun 1998 A
5798819 Hattori et al. Aug 1998 A
5808795 Shimomura et al. Sep 1998 A
5826959 Atsuchi Oct 1998 A
5826960 Gotoh et al. Oct 1998 A
5828489 Johnson et al. Oct 1998 A
5833360 Knox et al. Nov 1998 A
5838403 Jannson et al. Nov 1998 A
5841494 Hall Nov 1998 A
5844722 Stephens et al. Dec 1998 A
5864427 Fukano et al. Jan 1999 A
5886754 Kuo Mar 1999 A
5890095 Barbour et al. Mar 1999 A
5898521 Okada Apr 1999 A
5899551 Neijzen et al. May 1999 A
5900976 Handschy et al. May 1999 A
5907427 Scalora et al. May 1999 A
5912762 Li et al. Jun 1999 A
5914818 Tejada et al. Jun 1999 A
5917562 Woodgate et al. Jun 1999 A
5918961 Ueda Jul 1999 A
5930050 Dewald Jul 1999 A
5943171 Budd et al. Aug 1999 A
5958345 Turner et al. Sep 1999 A
5965247 Jonza et al. Oct 1999 A
5969861 Ueda et al. Oct 1999 A
5973833 Booth et al. Oct 1999 A
5978056 Shintani et al. Nov 1999 A
5982541 Li et al. Nov 1999 A
5986730 Hansen et al. Nov 1999 A
5991075 Katsuragawa et al. Nov 1999 A
5991077 Carlson et al. Nov 1999 A
6005918 Harris et al. Dec 1999 A
6008871 Okumura Dec 1999 A
6008951 Anderson Dec 1999 A
6010121 Lee Jan 2000 A
6016173 Crandall Jan 2000 A
6018841 Kelsay et al. Feb 2000 A
6049428 Khan et al. Apr 2000 A
6053616 Fujimori et al. Apr 2000 A
6055103 Woodgate et al. Apr 2000 A
6056407 Iinuma et al. May 2000 A
6062694 Oikawa et al. May 2000 A
6075235 Chun Jun 2000 A
6081312 Aminaka et al. Jun 2000 A
6081376 Hansen et al. Jun 2000 A
6082861 Dove et al. Jul 2000 A
6089717 Iwai Jul 2000 A
6096155 Harden et al. Aug 2000 A
6096375 Ouderkirk et al. Aug 2000 A
6108131 Hansen et al. Aug 2000 A
6122103 Perkins et al. Sep 2000 A
6122403 Rhoads Sep 2000 A
6124971 Ouderkirk et al. Sep 2000 A
6141075 Ohmuro et al. Oct 2000 A
6147728 Okumura et al. Nov 2000 A
6172813 Tadic-Galeb et al. Jan 2001 B1
6172816 Tadic-Galeb et al. Jan 2001 B1
6181386 Knox Jan 2001 B1
6181458 Brazas, Jr. et al. Jan 2001 B1
6185041 TadicGaleb et al. Feb 2001 B1
6208463 Hansen et al. Mar 2001 B1
6215547 Ramanujan et al. Apr 2001 B1
6234634 Hansen et al. May 2001 B1
6243199 Hansen et al. Jun 2001 B1
6247816 Cipolla et al. Jun 2001 B1
6249378 Shimamura et al. Jun 2001 B1
6250762 Kuijper Jun 2001 B1
6251297 Komura et al. Jun 2001 B1
6282025 Huang et al. Aug 2001 B1
6288840 Perkins et al. Sep 2001 B1
6291797 Koyama et al. Sep 2001 B1
6310345 Pittman et al. Oct 2001 B1
6339454 Knox Jan 2002 B1
6340230 Bryars et al. Jan 2002 B1
6345895 Maki et al. Feb 2002 B1
6348995 Hansen et al. Feb 2002 B1
6375330 Mihalakis Apr 2002 B1
6390626 Knox May 2002 B2
6398364 Bryars Jun 2002 B1
6406151 Fujimori Jun 2002 B1
6409525 Hoelscher et al. Jun 2002 B1
6411749 Teng et al. Jun 2002 B2
6424436 Yamanaka Jul 2002 B1
6426837 Clark et al. Jul 2002 B1
6447120 Hansen et al. Sep 2002 B1
6452724 Hansen et al. Sep 2002 B1
6460998 Watanabe Oct 2002 B1
6473236 Tadic-Galeb et al. Oct 2002 B2
6486997 Bruzzone et al. Nov 2002 B1
6490017 Huang et al. Dec 2002 B1
6496239 Seiberle Dec 2002 B2
6496287 Seiberle et al. Dec 2002 B1
6511183 Shimizu et al. Jan 2003 B2
6520645 Yamamoto et al. Feb 2003 B2
6532111 Kurtz et al. Mar 2003 B2
6547396 Svardal et al. Apr 2003 B1
6580471 Knox Jun 2003 B2
6583930 Schrenk et al. Jun 2003 B1
6585378 Kurtz et al. Jul 2003 B2
6624936 Kotchick et al. Sep 2003 B2
6643077 Magarill et al. Nov 2003 B2
6654168 Borrelli Nov 2003 B1
6661475 Stahl et al. Dec 2003 B1
6661484 Iwai et al. Dec 2003 B1
6665119 Kurtz et al. Dec 2003 B1
6666556 Hansen et al. Dec 2003 B2
6669343 Shahzad et al. Dec 2003 B2
6698891 Kato Mar 2004 B2
6704469 Xie et al. Mar 2004 B1
6710921 Hansen et al. Mar 2004 B2
6714350 Silverstein et al. Mar 2004 B2
6721096 Bruzzone et al. Apr 2004 B2
6739723 Haven et al. May 2004 B1
6746122 Knox Jun 2004 B2
6764181 Magarill et al. Jul 2004 B2
6769779 Ehrne et al. Aug 2004 B1
6781640 Huang Aug 2004 B1
6785050 Lines et al. Aug 2004 B2
6788461 Kurtz et al. Sep 2004 B2
6805445 Silverstein et al. Oct 2004 B2
6809864 Martynov et al. Oct 2004 B2
6809873 Cobb Oct 2004 B2
6811274 Olczak Nov 2004 B2
6813077 Borrelli et al. Nov 2004 B2
6816290 Mukawa Nov 2004 B2
6821135 Martin Nov 2004 B1
6823093 Chang et al. Nov 2004 B2
6829090 Katsumata et al. Dec 2004 B2
6844971 Silverstein et al. Jan 2005 B2
6846089 Stevenson et al. Jan 2005 B2
6859303 Wang et al. Feb 2005 B2
6876784 Nikolov et al. Apr 2005 B2
6896371 Shimizu et al. May 2005 B2
6897926 Mi et al. May 2005 B2
6899440 Bierhuizen May 2005 B2
6900866 Kurtz et al. May 2005 B2
6909473 Mi et al. Jun 2005 B2
6920272 Wang Jul 2005 B2
6922287 Wiki et al. Jul 2005 B2
6926410 Weber et al. Aug 2005 B2
6927915 Nakai Aug 2005 B2
6934082 Allen et al. Aug 2005 B2
6943941 Flagello et al. Sep 2005 B2
6947215 Hoshi Sep 2005 B2
6954245 Mi et al. Oct 2005 B2
6972906 Hasman et al. Dec 2005 B2
6976759 Magarill et al. Dec 2005 B2
6981771 Arai et al. Jan 2006 B1
7009768 Sakamoto Mar 2006 B2
7013064 Wang Mar 2006 B2
7023512 Kurtz et al. Apr 2006 B2
7023602 Aastuen et al. Apr 2006 B2
7025464 Beeson et al. Apr 2006 B2
7046422 Kimura et al. May 2006 B2
7046441 Huang et al. May 2006 B2
7046442 Suganuma May 2006 B2
7050233 Nikolov et al. May 2006 B2
7050234 Gage et al. May 2006 B2
7075602 Sugiura et al. Jul 2006 B2
7075722 Nakai Jul 2006 B2
7085050 Florence Aug 2006 B2
7099068 Wang et al. Aug 2006 B2
7113335 Sales Sep 2006 B2
7116478 Momoki et al. Oct 2006 B2
7129183 Mori et al. Oct 2006 B2
7131737 Silverstein et al. Nov 2006 B2
7142363 Sato et al. Nov 2006 B2
7142375 Nikolov et al. Nov 2006 B2
7155073 Momoki et al. Dec 2006 B2
7158302 Chiu et al. Jan 2007 B2
7159987 Sakata Jan 2007 B2
7177259 Nishi et al. Feb 2007 B2
7184115 Mi et al. Feb 2007 B2
7185984 Akiyama Mar 2007 B2
7213920 Matsui et al. May 2007 B2
7220371 Suganuma May 2007 B2
7221420 Silverstein et al. May 2007 B2
7221501 Flagello et al. May 2007 B2
7227684 Wang et al. Jun 2007 B2
7230766 Rogers Jun 2007 B2
7234816 Bruzzone et al. Jun 2007 B2
7236655 Momoki et al. Jun 2007 B2
7255444 Nakashima et al. Aug 2007 B2
7256938 Barton et al. Aug 2007 B2
7268946 Wang Sep 2007 B2
7306338 Hansen et al. Dec 2007 B2
7375887 Hansen May 2008 B2
7414784 Mi et al. Aug 2008 B2
7561332 Little et al. Jul 2009 B2
7570424 Perkins et al. Aug 2009 B2
7619816 Deng et al. Nov 2009 B2
7630133 Perkins Dec 2009 B2
7670758 Wang et al. Mar 2010 B2
7692860 Sato et al. Apr 2010 B2
7722194 Amako May 2010 B2
7755718 Amako et al. Jul 2010 B2
7789515 Hansen et al. Sep 2010 B2
7813039 Perkins Oct 2010 B2
7944544 Amako et al. May 2011 B2
8009355 Nakai Aug 2011 B2
8027087 Perkins et al. Sep 2011 B2
20010053023 Kameno et al. Dec 2001 A1
20020003661 Nakai Jan 2002 A1
20020015135 Hanson Feb 2002 A1
20020040892 Koyama et al. Apr 2002 A1
20020122235 Kurtz et al. Sep 2002 A1
20020167727 Hansen et al. Nov 2002 A1
20020176166 Schuster Nov 2002 A1
20020181824 Huang et al. Dec 2002 A1
20020191286 Gale et al. Dec 2002 A1
20030058408 Magarill et al. Mar 2003 A1
20030072079 Silverstein et al. Apr 2003 A1
20030081178 Shimizu et al. May 2003 A1
20030081179 Pentico et al. May 2003 A1
20030117708 Kane Jun 2003 A1
20030156325 Hoshi Aug 2003 A1
20030161029 Kurtz et al. Aug 2003 A1
20030180024 Edlinger Sep 2003 A1
20030193652 Pentico et al. Oct 2003 A1
20030202157 Pentico et al. Oct 2003 A1
20030218722 Tsao et al. Nov 2003 A1
20030223118 Sakamoto Dec 2003 A1
20030223670 Nikolov et al. Dec 2003 A1
20030224116 Chen et al. Dec 2003 A1
20040008416 Okuno Jan 2004 A1
20040042101 Wang Mar 2004 A1
20040047039 Wang et al. Mar 2004 A1
20040047388 Wang et al. Mar 2004 A1
20040051928 Mi Mar 2004 A1
20040070829 Kurtz et al. Apr 2004 A1
20040071425 Wang Apr 2004 A1
20040095637 Nikolov et al. May 2004 A1
20040120041 Silverstein et al. Jun 2004 A1
20040125449 Sales Jul 2004 A1
20040165126 Ooi et al. Aug 2004 A1
20040169924 Flagello et al. Sep 2004 A1
20040174596 Umeki Sep 2004 A1
20040201889 Wang et al. Oct 2004 A1
20040201890 Crosby Oct 2004 A1
20040218270 Wang Nov 2004 A1
20040227994 Ma et al. Nov 2004 A1
20040233362 Kashima Nov 2004 A1
20040240777 Woodgate et al. Dec 2004 A1
20040258355 Wang et al. Dec 2004 A1
20050008839 Cramer et al. Jan 2005 A1
20050018308 Cassarley et al. Jan 2005 A1
20050045799 Deng et al. Mar 2005 A1
20050046941 Satoh et al. Mar 2005 A1
20050078374 Tairo et al. Apr 2005 A1
20050084613 Wang et al. Apr 2005 A1
20050088739 Chiu et al. Apr 2005 A1
20050122587 Ouderkirk et al. Jun 2005 A1
20050128567 Wang et al. Jun 2005 A1
20050128587 Suganuma Jun 2005 A1
20050152033 Kang et al. Jul 2005 A1
20050179995 Nikolov et al. Aug 2005 A1
20050180014 Nikolov et al. Aug 2005 A1
20050181128 Nikolov et al. Aug 2005 A1
20050190445 Fukuzaki Sep 2005 A1
20050195485 Hirai et al. Sep 2005 A1
20050201656 Nikolov et al. Sep 2005 A1
20050206847 Hansen et al. Sep 2005 A1
20050213043 Nakashima et al. Sep 2005 A1
20050259324 Flagello et al. Nov 2005 A1
20050271091 Wang Dec 2005 A1
20050275944 Wang et al. Dec 2005 A1
20050277063 Wang et al. Dec 2005 A1
20060001969 Wang et al. Jan 2006 A1
20060061862 Mi et al. Mar 2006 A1
20060072074 Matsui et al. Apr 2006 A1
20060072194 Lee Apr 2006 A1
20060087602 Kunisada et al. Apr 2006 A1
20060092513 Momoki May 2006 A1
20060103810 Ma et al. May 2006 A1
20060113279 Little Jun 2006 A1
20060118514 Little et al. Jun 2006 A1
20060119937 Perkins Jun 2006 A1
20060127829 Deng et al. Jun 2006 A1
20060127830 Deng et al. Jun 2006 A1
20060187416 Ouchi et al. Aug 2006 A1
20060192960 Renes et al. Aug 2006 A1
20060215263 Mi et al. Sep 2006 A1
20060238715 Hirata et al. Oct 2006 A1
20060268207 Tan et al. Nov 2006 A1
20070146644 Mi et al. Jun 2007 A1
20070183035 Asakawa et al. Aug 2007 A1
20070195676 Hendriks et al. Aug 2007 A1
20070217008 Wang et al. Sep 2007 A1
20070223349 Shimada et al. Sep 2007 A1
20070242187 Yamaki et al. Oct 2007 A1
20070242228 Chen et al. Oct 2007 A1
20070242352 MacMaster Oct 2007 A1
20070297052 Wang et al. Dec 2007 A1
20080037101 Jagannathan et al. Feb 2008 A1
20080038467 Jagannathan et al. Feb 2008 A1
20080055549 Perkins Mar 2008 A1
20080055720 Perkins Mar 2008 A1
20080055721 Perkins Mar 2008 A1
20080055722 Perkins Mar 2008 A1
20080266662 Perkins Oct 2008 A1
20080278811 Perkins Nov 2008 A1
20080316599 Wang et al. Dec 2008 A1
20090040607 Amako et al. Feb 2009 A1
20090041971 Wang et al. Feb 2009 A1
20090053655 Deng et al. Feb 2009 A1
20090109377 Sawaki et al. Apr 2009 A1
20100103517 Davis et al. Apr 2010 A1
20100239828 Cornaby Sep 2010 A1
20100328768 Lines Dec 2010 A1
20100328769 Perkins Dec 2010 A1
20110080640 Kaida et al. Apr 2011 A1
20110096396 Kaida et al. Apr 2011 A1
Foreign Referenced Citations (53)
Number Date Country
10327963 Jan 2005 DE
1239308 Nov 2002 EP
56156815 Dec 1981 JP
58-042003 Mar 1983 JP
10028675 Jan 1989 JP
02-308106 Dec 1990 JP
3005706 Jan 1991 JP
04 366916 Jun 1991 JP
4-12241 Jan 1992 JP
4331913 Nov 1992 JP
5134115 May 1993 JP
5341234 Dec 1993 JP
6138413 May 1994 JP
06-174907 Jun 1994 JP
7005316 Jan 1995 JP
7-146469 Jun 1995 JP
7294851 Nov 1995 JP
9090122 Apr 1997 JP
9090129 Apr 1997 JP
9178943 Jul 1997 JP
9212896 Aug 1997 JP
9288211 Nov 1997 JP
10-003078 Jan 1998 JP
10073722 Mar 1998 JP
10084502 Mar 1998 JP
10-153706 Jun 1998 JP
10-268301 Oct 1998 JP
11-014814 Jan 1999 JP
11064794 Mar 1999 JP
11142650 May 1999 JP
11-174396 Jul 1999 JP
11237507 Aug 1999 JP
11-258603 Sep 1999 JP
11-306581 Nov 1999 JP
2003502708 Jan 2003 JP
2004157159 Jun 2004 JP
2004309903 Nov 2004 JP
2005151154 May 2005 JP
2005195824 Jul 2005 JP
2006047813 Feb 2006 JP
2006-133402 May 2006 JP
2006201540 Aug 2006 JP
10-2004-0046137 Jun 2004 KR
10-2005-0017871 Feb 2005 KR
WO9615474 May 1996 WO
WO 9959005 Nov 1999 WO
WO 0151964 Jul 2001 WO
WO 0221205 Mar 2002 WO
WO 02077588 Oct 2002 WO
WO 03069381 Aug 2003 WO
WO 2004019020 Mar 2004 WO
WO2006014408 Feb 2006 WO
WO 2006036546 Apr 2006 WO
Related Publications (1)
Number Date Country
20100328768 A1 Dec 2010 US