The present disclosure relates to processes for automatic registration between circuit dies and electrically conductive interconnects, and articles or devices made by the same.
Integration of solid semiconductor dies with printing techniques combines the computational prowess of semiconductor technology with the high-throughputs and form-factor flexibility of web-based processes. However, a major hurdle in the flexible hybrid electronics manufacturing is the registration of semiconductor dies to printed traces on moving webs. Typical alignment mechanisms of wafer-based semiconductor devices may not be readily transferred to web-based processes.
There is a desire to achieve micron-level registration between solid circuit dies and electrically conductive interconnects on a substrate, in particular, a moving, stretchy flexible substrate. Briefly, in one aspect, the present disclosure describes an article including a substrate having a major surface, and a solid circuit die disposed on a registration area of the major surface of the substrate. The solid circuit die has one or more contact pads on a bottom surface thereof. One or more channels are disposed on the major surface of the substrate, extending into the registration area and having a portion underneath the bottom surface of the solid circuit die. One or more electrically conductive traces are formed in the one or more channels, the electrically conductive traces being in direct contact with the contact pads of the solid circuit die.
In another aspect, the present disclosure describes a method including providing a substrate having a major surface; providing a solid circuit die on a registration area of the major surface of the substrate, the solid circuit die having one or more contact pads on a bottom surface thereof; forming one or more channels on the major surface of the substrate, the channels extending into the registration area and having a portion underneath the bottom surface of the solid circuit die; and disposing a conductive liquid into the channels to make direct contact with the contact pads on the bottom surface of the solid circuit die. In some embodiments, the conductive liquid can flow, primarily by a capillary pressure, in the channels. The conductive liquid can be solidified to form one or more electrically conductive traces in direct contact with the contact pads of the solid circuit die.
Various unexpected results and advantages are obtained in exemplary embodiments of the disclosure. One such advantage of exemplary embodiments of the present disclosure is that automatic registration can be obtained between a solid circuit die and electrically conductive interconnects or traces. In particular, when the solid circuit die is disposed on a flexible substrate that may be stretched along various directions, it might be challenging to provide interconnects aligned or registered with contact pads of the circuit die attached to such moving, stretchy substrate. The present disclosure provides methods of automatic registration via a capillary liquid flow to overcome the challenge. The automatic registration described herein can be tolerant of various sources of misalignment in web-based processes such as, for example, a substrate distortion from in-line thermal cycles and/or tension control.
Various aspects and advantages of exemplary embodiments of the disclosure have been summarized. The above Summary is not intended to describe each illustrated embodiment or every implementation of the present certain exemplary embodiments of the present disclosure. The Drawings and the Detailed Description that follow more particularly exemplify certain preferred embodiments using the principles disclosed herein.
The disclosure may be more completely understood in consideration of the following detailed description of various embodiments of the disclosure in connection with the accompanying figures, in which:
In the drawings, like reference numerals indicate like elements. While the above-identified drawing, which may not be drawn to scale, sets forth various embodiments of the present disclosure, other embodiments are also contemplated, as noted in the Detailed Description. In all cases, this disclosure describes the presently disclosed disclosure by way of representation of exemplary embodiments and not by express limitations. It should be understood that numerous other modifications and embodiments can be devised by those skilled in the art, which fall within the scope and spirit of this disclosure.
For the following Glossary of defined terms, these definitions shall be applied for the entire application, unless a different definition is provided in the claims or elsewhere in the specification.
Certain terms are used throughout the description and the claims that, while for the most part are well known, may require some explanation. It should be understood that:
The term “conductive liquid” refers to a liquid composition that is flowable in a channel via capillary. The conductive liquid described herein can be solidified to form electrically conductive traces. The conductive liquid may include any suitable electronic material having properties desired for use in forming electrically conductive traces.
The term “adhesive ink” refers to a liquid composition including a liquid carrier and one or more adhesives. The adhesive ink described herein can be solidified to form an adhesive layer.
The term “adjoining” with reference to a particular layer means joined with or attached to another layer, in a position wherein the two layers are either next to (i.e., adjacent to) and directly contacting each other, or contiguous with each other but not in direct contact (i.e., there are one or more additional layers intervening between the layers).
By using terms of orientation such as “atop”, “on”, “over,” “bottom,” “up,” “covering”, “uppermost”, “underlying” and the like for the location of various elements in the disclosed coated articles, we refer to the relative position of an element with respect to a horizontally-disposed, upwardly-facing substrate. However, unless otherwise indicated, it is not intended that the substrate or articles should have any particular orientation in space during or after manufacture.
The terms “about” or “approximately” with reference to a numerical value or a shape means+/−five percent of the numerical value or property or characteristic, but expressly includes the exact numerical value. For example, a viscosity of “about” 1 Pa-sec refers to a viscosity from 0.95 to 1.05 Pa-sec, but also expressly includes a viscosity of exactly 1 Pa-sec. Similarly, a perimeter that is “substantially square” is intended to describe a geometric shape having four lateral edges in which each lateral edge has a length which is from 95% to 105% of the length of any other lateral edge, but which also includes a geometric shape in which each lateral edge has exactly the same length.
The term “substantially” with reference to a property or characteristic means that the property or characteristic is exhibited to a greater extent than the opposite of that property or characteristic is exhibited. For example, a substrate that is “substantially” transparent refers to a substrate that transmits more radiation (e.g. visible light) than it fails to transmit (e.g. absorbs and reflects). Thus, a substrate that transmits more than 50% of the visible light incident upon its surface is substantially transparent, but a substrate that transmits 50% or less of the visible light incident upon its surface is not substantially transparent.
As used in this specification and the appended embodiments, the singular forms “a”, “an”, and “the” include plural referents unless the content clearly dictates otherwise. Thus, for example, reference to fine fibers containing “a compound” includes a mixture of two or more compounds. As used in this specification and the appended embodiments, the term “or” is generally employed in its sense including “and/or” unless the content clearly dictates otherwise.
As used in this specification, the recitation of numerical ranges by endpoints includes all numbers subsumed within that range (e.g. 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.8, 4, and 5).
Unless otherwise indicated, all numbers expressing quantities or ingredients, measurement of properties and so forth used in the specification and embodiments are to be understood as being modified in all instances by the term “about.” Accordingly, unless indicated to the contrary, the numerical parameters set forth in the foregoing specification and attached listing of embodiments can vary depending upon the desired properties sought to be obtained by those skilled in the art utilizing the teachings of the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claimed embodiments, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
Various exemplary embodiments of the disclosure will now be described with particular reference to the Drawings. Exemplary embodiments of the present disclosure may take on various modifications and alterations without departing from the spirit and scope of the disclosure. Accordingly, it is to be understood that the embodiments of the present disclosure are not to be limited to the following described exemplary embodiments, but are to be controlled by the limitations set forth in the claims and any equivalents thereof.
In the depicted embodiment of
The channels 8 are configured to allow fluid to flow primarily via a capillary force, for example, from the second end 104 toward the first end 102. In some embodiments, at least one of the channels 8 or at least a portion of one channel may be open on the upper surface. In some embodiments, at least one of the channels 8 or at least a portion of one channel may be enclosed by an upper wall. While one registration area and eight channels are shown in the embodiment of
In some embodiments, the features (e.g., the channels 8 or the registration area 6) on the substrate 2 can include indentations formed into the major surface 4 thereof. In some embodiments, the features (e.g., the channels 8 or the registration area 6) on the substrate 2 can include embossments projecting from the major surface 4 thereof. In some embodiments, the features (e.g., the channels 8 or the registration area 6) can be formed by adding materials on the major surface 4. In some embodiments, the registration area 6 may be a portion of the major surface 4 of the substrate 2 that is coplanar to other portions of the major surface 4. In some embodiments, one or more registration marks or fiducials can be formed on the registration area 6. When a solid circuit die is received on the registration area 6, the registration marks or fiducials can be used to register the solid circuit die with the substrate 2 and the channels 8. The features (e.g., the channels and the registration area 6) can be formed by any suitable techniques including, for example, microreplication, hot embossing, molding, soft lithography, etching, 3D printing, etc.
In some embodiments, the features (e.g., the channels 8 or a pocket in the registration area 6) may have substantially the same depth. The top or bottom surfaces of the adjacent features on the substrate 2 may be substantially coplanar. In some embodiments, the features may have different depths. The top or bottom surfaces of the adjacent features may not be coplanar. For example, one or more steps may be formed at an edge where a channel is connected to a pocket.
In some embodiments, the substrate 2 may be a flexible substrate, for example, a web of indefinite length material being conveyed through a web path. The flexible substrate may include, for example, polyethylene terephthalate (PET), polyethylene, polystyrene, polyurethane etc. The processes described herein can be carried out on a roll-to-roll apparatus including one or more rollers to convey the web along the web path. It is to be understood in some embodiments, the substrate 2 or a portion of the substrate 2 may be rigid, made of materials include, for example, bakelite, acrylonitrile butadiene styrene (ABS), cured epoxy systems, etc. The substrate 2 can be made of any suitable materials for forming the features.
The substrate 2 may have a thickness of, for example, 2 mm or less, 1 mm or less, 500 microns or less, or 200 microns or less. The features (e.g., a channel, a pocket, etc.) formed on the major surface 4 may have a minimum dimension of, for example, 500 microns or less, 300 microns or less, 100 microns or less, 50 microns or less, or 10 microns or less.
The registration area 6 is configured to receive a solid circuit die 20 as shown in
Referring again to
In some embodiments, a contact pad and a channel can be aligned such that the contact pad may have an exposed surface or portion that directly faces the first end 102 of a channel. For example,
In some embodiments, the contact pads 22 may have a width that substantially matches the width of the channels 8. In some embodiments, the channels may have a width greater than that of the contact pads aligned with the channels. The channel may have a width a width, for example, about 10%, about 30%, about 50%, about 70%, or about 90% greater than the width of the contact pad on the circuit die. For example, when the contact pad is about 200 microns wide, the channel can be chosen to be about 300 microns wide. A wider channel may allow an electrically conductive trace formed therein to substantially cover the contact pad and provide superior electrical contacts therebetween.
The circuit die 20 can include a circuit chip having one or more contact pads arranged along the edges 23 thereof. In some embodiments, the circuit die 20 can include a rigid semiconductor die. In some embodiments, the circuit die 20 can include a printed circuit board (PCB). In some embodiments, the circuit die 20 can include a flexible printed circuit (FPC). It is to be understood that the circuit die 20 can be any suitable circuit dies to be disposed on a substrate, of which one or more contact pads are to be registered and connected to electrically conductive traces on the substrate.
In some embodiments, when the circuit die 20 is received by a pocket at the registration area 6, the circuit die 20 may have a thickness substantially the same as the depth of the pocket or the depth of the channel. In some embodiments, the depth of the pocket may be such that the bottom of the solid circuit die within the pocket is positioned approximately at the neutral bending plane of the neutral construction.
In some embodiments, the circuit die 20 may be an ultra-thin chip with a thickness of, for example, about 2 microns to about 200 microns, about 5 microns to about 100 microns, or about 10 microns to about 100 microns. The depth of a pocket to receive the circuit die can be, for example, 2 times, 4 times, 6 times, 8 times, or 10 times greater than the thickness of circuit die. The depth of the pocket may be such that when the solid circuit die is attached to the bottom surface of the pocket, the solid circuit die may extend substantially along the neutral bending plane of the neutral construction. This arrangement may effectively reduce strain on the solid circuit die when the substrate bends.
In some embodiments, the ultra-thin circuit die may be loaded on a handle substrate to facilitate the disposition onto the registration area 6. The handle substrate can be removed after the circuit die 20 is received at the registration area 6.
In some embodiments, the circuit die 20 can be attached to the surface of the registration area 6 via an adhesive. When the registration area 6 includes a pocket, the circuit die 20 can be attached to the bottom surface of the pocket by the adhesive. Exemplary adhesives may include structural adhesives, acrylic adhesives, epoxy adhesive, urethane adhesives, optical adhesives, etc. In some embodiments, the adhering can be performed with, for example, a UV curable polyurethane compound. The adhesive can be precisely applied to attach the circuit die 20 onto the surface of the registration area 6 without blocking the channels 8. See also
As shown in
The conductive liquid 16 can be delivered at the second, distal ends 104 of the channels 8 by various methods including, for example, ink jet printing, dispensing, micro-injection, etc. In some embodiments, one or more reservoirs can be provided to be adjacent and in fluid communication with the second end 104 of the channel 8. The reservoirs can be shaped to provide a convenient receptacle for the dispensed conductive liquid. The conductive liquid 16 can be disposed into the reservoirs by, for example, ink jet printing, dispensing such as piezo dispensing, needle dispensing, screen printing, flexo printing, etc. The conductive liquid 16 can move, by virtue of a capillary pressure, from the reservoirs to the channels 8. The reservoir may have a depth that is substantially the same as the depth of the channels 8. The reservoir can have any desirable shapes and dimensions that are suitable for receiving the conductive liquid 16. In some embodiments, the reservoir may have a diametric dimension in a range, for example, from about 1 micron to about 1.0 mm, from about 5 microns to about 500 microns, or from about 50 microns to about 500 microns.
In some embodiments, the conductive liquid 16 can be directly disposed on the surface area around the second end 104 of the channel 8. Then the conductive liquid 16 can be automatically collected, via a capillary pressure, by the second end 104 of the channel 8 from the surrounding area. In some embodiments, the surrounding area of the second end 104 can be selectively treated or patterned to enhance the collection of the conductive liquid 16 into the second end 104 of the channel 8. Suitable surface treatment or patterning methods may include, for example, microreplication, flexo printing, screen printing, gravure printing, etc. It is to be understood that any suitable methods can be used to deliver the conductive liquid 16 into the second, distal ends 104 of the channels 8. The conductive liquid 16 can be deposited in any suitable manner, such as, for example, printing, pouring, funneling, micro-injecting, etc.
When the conductive liquid 16 is delivered into the second end 104 of the channel 8, the conductive liquid 16 can be routed, by virtue of a capillary pressure, through the channel 8 from the second, distal end 104 toward the first end 102. While not wanting to be bounded by theory, it is believed that a number of factors can affect the ability of the conductive liquid 16 to move through the channel 8 via capillarity. Such factors may include, for example, the dimensions of the channels, the viscosity of the conductive liquid, surface energy, surface tension, drying, etc. The factors were discussed in U.S. Pat. No. 9,401,306 (Mahajan et al.), which is incorporated herein by reference.
The channel 8 can have any suitable dimensions (e.g., width, depth, or length) which can, in part, be determined by one or more of the factors described above. In some embodiments, the channel 8 may have a width or depth in a range, for example, from about 0.01 microns to about 500 microns, from about 0.05 microns to about 200 microns, or from about 0.1 microns to about 100 microns.
Referring to
The conductive liquid 16 inside the channel 8 can be solidified to form an electrically conductive trace 30 deposited in the channel and in direct contact to the contact pads on the bottom surface 22b of the circuit die 20. See also
When the conductive liquid 16 moves, via capillarity, in the channel 8 and arrives at the first end 102 thereof, the conductive liquid 16 can wet the portion of the bottom surface 20b of the circuit die 20 that is exposed to the channel 8. The conductive liquid 16 can wet and spread to cover the contact pad 22.
In some embodiments, the registration area 6 may be a pocket, the side surface 23 of the circuit die 20 and the side wall 18 of the pocket 6 may have a gap 38 formed therebetween, as shown
When the conductive liquid 16 flows in the channel 8 and into the registration area 6, the edges of the upper surface of the conductive liquid can still serve as pinned contact lines and prevent a portion of the conductive liquid 16 from flowing into the gap 38. See also
The present disclosure provides processes for automatic registration between an electronic component (e.g., a solid circuit die) and electrically conductive interconnects, and articles or devices made by the same are provided. The solid circuit die is disposed on a substrate with contact pads aligned with channels on the substrate. Electrically conductive traces are formed by flowing a conductive liquid in the channels toward the contact pads to obtain the automatic registration.
In some embodiments, the substrate can have a registration feature shaped to receive the electronic component, and at least one channel shaped to extend away an area that corresponds with one of the contacts when the electronic component is disposed within the registration feature. A conductive liquid can be dispensed within the channel such that the conductive liquid flows by capillary in the channel toward and wets the contacts. The conductive liquid can be solidified to form a conductive trace in the channel. In some embodiments, the at least one channel further includes an enlarged portion shaped to provide a convenient receptacle for the dispensed adhesive ink or conductive liquid. For example, one end of the channel can be fluidly connected to a reservoir to facilitate liquid delivery.
In the present disclosure, the liquid or ink delivered into the channels can automatically register with the circuit dies by wetting out, via capillary, various surfaces of registration features and circuit dies on the substrate (e.g., channel walls, side walls of the pocket, side surfaces of the circuit die, etc.). The flow of liquid on the various capillary surfaces can be automatically directed by a capillary force, eliminating the necessity of using fluid pumps to pump the fluid toward the circuit die. After the automatic registration, the liquid or ink can be further solidified or dried to form a solid, continuous layer. The process can be repeated to form a multilayer structure aligned with the solid circuit die on the substrate.
In some embodiments, after the formation of electrically conductive traces in the channels, the channels can be filled with an encapsulant material to protect the structure. The encapsulant material may include, for example, a dielectric material, a polymeric material, etc. In some embodiments, the encapsulant material can be delivered as a capillary liquid flow to fill the channels. The liquid can also flow toward the pocket to cover the circuit die installed therein. The liquid can then be solidified to form an encapsulant material to protect the underneath traces, circuit dies, and contacts formed therebetween. It is to be understood that the encapsulant material may be provided by any other suitable processes to cover the traces and circuit dies.
When electrically conductive traces are formed and automatically registered with contact pads on circuit dies, the traces can be connected to other portions of a circuit or other circuits or devices. In some embodiments, additional metal traces (e.g., Cu traces) can be patterned in registration to the electrically conductive traces. In some embodiments, the electrically conductive traces can be connected to an antenna coil of an electronic device such as a receiver or transmitter. The processes described herein can be used to make various chip-based circuits/devices including, for example, radio-frequency identification (RFID) tags, near field communication (NFC) circuits, Bluetooth circuits, Wi-Fi circuits, microprocessor chips, etc.
In many applications, a solid circuit die may have its contact pads disposed on a major surface (e.g., a top or bottom surface), not on its side surfaces. The present disclosure provides embodiments on how to achieve micron-level registration between such solid circuit dies and electrically conductive interconnects on a substrate, in particular, a moving, stretchy flexible substrate. When a circuit die is disposed inside a pocket on a substrate, the circuit die can be positioned to have the major surface with the contact pads facing down, i.e., having the contact pads in contact or close proximate with the bottom surface of the pocket. One or more channels formed on the substrate can extend into the pocket and reach the bottom contacts of the circuit die. Electrically conductive traces can be formed in the channels and extend to be in direct contact with the bottom contact pads of the solid circuit die.
When a circuit die is disposed into the pocket 6, the bottom contacts of the circuit die can be aligned with the ends of the channels inside the pocket 6. Electrically conductive traces can be formed in the channels and extend to be in direct contact with the bottom contact pads of the solid circuit die. It is to be understood that the ends of the channel inside the pocket 6 can have various configurations so that the electrically conductive traces formed therein can have excellent contact with the bottom contact pads of the circuit die.
When a circuit die is disposed into the pocket 6, the bottom contacts of the circuit die can be aligned with a portion of the inner channel 403 or 405. A conductive liquid can flow, primarily by a capillary pressure, in the inlet channel 402i or 404i into the inner channel 403 or 405 to make direct contact with the bottom contact pads of the solid circuit die. Excess liquid can flow out of the pocket via the outlet channel 402o or 404o. The inlet and outlet channels (e.g., 402i and 402o, or 402i and 402o) are fluidly connected via the respective inner channels (e.g., 403 or 405), which can help to ensure a continuous liquid flow without trapping air in the inner channels. In this manner, excellent contacts can be formed between the conductive liquid and the bottom contact pads of the solid circuit die.
As shown in
In some embodiments, the inner channel 403 or 405 can be shaped such that the bottom contact pads 22 of the circuit die 20 are positioned within the respective outer edges 403e and 405e of the inner channels 403 and 405. When the circuit die 20 is attached to the bottom surface 62 of the pocket 6 via a liquid adhesive, the outer edges 403 and 405e of the channels can stop the movement (e.g., by pinning) of the liquid adhesive (e.g., from a central portion of the pocket 6 towards the contact pads 22) and prevent possible contamination to the contact pads 22.
In some embodiments, a conductive liquid can flow into the channels (e.g., the inner channel 403 or 405) via the inlet channels (e.g., 402i or 404i), solidified to form electrically conductive traces therein. For example, the electrically conductive traces can be formed by evaporation of a solvent of liquid conductive ink. During a solidification process, the conductive material can be deposited on the side walls and bottom of the channels, and on a portion of the bottom face of the circuit die sitting atop the channel. In the process, the conductive material can make a conformal contact with the contact pads on the circuit die. The solidification process may leave some void space in the channels underneath the circuit die. The void space can be filled with an encapsulant material to protect the structure. The encapsulant material may include, for example, a dielectric material, a polymeric material, etc. In some embodiments, the encapsulant material can be delivered as a capillary liquid flow to fill the channels. The liquid can also flow into the inner channels, and can then be solidified to reinforce the contact interface formed between the electrically conductive traces and the contact pads of the circuit die.
In the depicted embodiments of
The first portion 510a may run across the side wall 64 in a plane substantially perpendicular to the bottom surface 62 of the pocket 6, which can effectively prevent liquid leaking from the channels along the side wall of the pocket. The first portion 510a can extend continuously into the pocket 6 to form the second portion 510b which can extend to be beneath a circuit die that is disposed in the pocket 6. As shown in
While the embodiment of
In some embodiments, before flowing the conductive liquid into the pocket 6, the circuit die 20 can be attached to the bottom surface 62 of the pocket 6 via a liquid adhesive such as shown in
In some embodiments, the liquid adhesive can be provided before placing the circuit die 20 into the pocket 6. In some embodiments, the liquid adhesive can be delivered to the pocket 6 as a single drop at the center of the pocket 6 or as a myriad of drops in a specific pattern depending on the size and specifics of the circuit die 20. Isolated reservoirs can also be positioned at the bottom of the circuit die 20 to catch and pin the liquid adhesive in pre-defined locations. When the circuit die 20 is placed atop the liquid adhesive, the adhesive can wet out the space between the circuit die 20 and the pocket 6, while getting pinned at the edges of the channels (e.g., inner channels connected to the channel 610 for forming electrically conductive traces) under the circuit die 20. This adhesive patterning scheme can help to attach the circuit die 20 to the pocket 6 without contaminating the contact pads on the circuit die 20.
The gap 720 can be greater than the tolerance that is required to position the circuit die into the pocket. For example, a typical tolerance may be, for example, from about 10 to about 20 micrometers, generally less than about 50 micrometers. With such a tolerance, i.e., a small gap between the side walls of the pocket and the circuit die, the conductive fluid flowing in the channels may wick into the small gap and undesirably connect adjacent channels or contact pads. Such undesired leakage can be avoided by providing a greater gap between the side walls of the pocket and the circuit die. In some embodiments, the gap 720 may be at least 3 times, at least 5 times, at least 7 times, at least 10 times, or at least 20 times greater than the required tolerance. In some embodiments, the gap 720 may be in a range, for example, from about 100 micrometers to about 2 mm or greater.
In some embodiments, after the formation of electrically conductive traces in the channels (e.g., the inlet channels 402i and 404i, the outlet channels 402o and 404o, or the inner channels 403 and 405 in
The operation of the present disclosure will be further described with regard to the following embodiments. These embodiments are offered to further illustrate the various specific and preferred embodiments and techniques. It should be understood, however, that many variations and modifications may be made while remaining within the scope of the present disclosure.
It is to be understood that any one of embodiments 1-10 and 11-23 can be combined.
Embodiment 1 is an article comprising:
a substrate having a major surface;
a solid circuit die disposed on a registration area of the major surface of the substrate, the solid circuit die having one or more contact pads on a bottom surface thereof;
one or more electrically conductive traces formed in the one or more channels, the electrically conductive traces being in direct contact with the contact pads of the solid circuit die.
Embodiment 2 is the article of embodiment 1, wherein the channels comprise an inlet channel and an outlet channel that are fluidly connected to form an inner channel, at least a portion of the inner channel being underneath the bottom surface of the solid circuit die.
Embodiment 3 is the article of embodiment 1 or 2, wherein the substrate further comprises one or more safety channels disposed adjacent to at least one of the channels.
Embodiment 4 is the article of embodiment 3, wherein at least one of the safety channels extends to be underneath a bottom surface of the solid circuit die.
Embodiment 5 is the article of any one of embodiments 1-4, wherein the registration area comprises a pocket to receive the solid circuit die.
Embodiment 6 is the article of embodiment 5, wherein the pocket includes a sloped sidewall, and at least one of the channels extends across the sloped sidewall.
Embodiment 7 is the article of embodiment 5 or 6, wherein the pocket is oversized such that there is a gap between edges of the pocket and the solid circuit die, the gap being at least 3 times greater than a required tolerance.
Embodiment 8 is the article of any one of embodiments 1-7, wherein the channels are backfilled with an encapsulate material.
Embodiment 9 is the article of any one of embodiments 1-8, wherein the substrate is a flexible substrate including a web of indefinite length polymeric material.
Embodiment 10 is the article of any one of embodiments 1-9, the solid circuit die is a semiconductor die.
Embodiment 11 is a method comprising:
providing a substrate having a major surface;
disposing a solid circuit die on a registration area of the major surface of the substrate, the solid circuit die having one or more contact pads on a bottom surface thereof;
forming one or more channels on the major surface of the substrate, the channels extending into the registration area and having a portion underneath the bottom surface of the solid circuit die;
disposing a conductive liquid into the channels;
flowing the conductive liquid, primarily by a capillary pressure, in the channels to make direct contact with the contact pads on the bottom surface of the solid circuit die; and
solidifying the conductive liquid to form one or more electrically conductive traces in direct contact with the contact pads of the solid circuit die.
Embodiment 12 is the method of embodiment 11, wherein the channels comprise an inlet channel and an outlet channel that are fluidly connected, and the conductive liquid flows into the inlet channel.
Embodiment 13 is the method of embodiment 12 further comprising disposing the conductive liquid into the inlet channel.
Embodiment 14 is the method of any one of embodiments 11-13, further comprising providing one or more safety channels disposed adjacent to at least one of the channels and configured to block a flow of conductive liquid from the adjacent channel.
Embodiment 15 is the method of embodiment 14, wherein at least one of the safety channels extends to be underneath a bottom surface of the solid circuit die.
Embodiment 16 is the method of any one of embodiments 11-15, wherein the registration area includes a pocket to receive the solid circuit die.
Embodiment 17 is the method of embodiment 16, wherein the pocket includes a sloped sidewall, and at least one of the channels extends across the sloped sidewall.
Embodiment 18 is the method of embodiment 17, wherein the pocket is oversized such that there is a gap between edges of the pocket and the solid circuit die, the gap being at least 3 times greater than a required tolerance.
Embodiment 19 is the method of any one of embodiments 11-18 further comprising backfilling the channels with an encapsulate material.
Embodiment 20 is the method of any one of embodiments 11-19, wherein the method is carried out on a roll-to-roll apparatus.
Embodiment 21 is the method of any one of embodiments 11-20, wherein disposing the conductive liquid comprises flowing the conductive liquid, primarily by a capillary pressure, in the channels.
Embodiment 22 is the method of any one of embodiments 11-21, further comprising solidifying the conductive liquid to form one or more electrically conductive traces in direct contact with the contact pads of the solid circuit die.
Embodiment 23 is the method of any one of embodiments 11-22, providing a solid circuit die on a registration area comprises attaching the solid circuit die on the registration area by an adhesive.
Reference throughout this specification to “one embodiment,” “certain embodiments,” “one or more embodiments” or “an embodiment,” whether or not including the term “exemplary” preceding the term “embodiment,” means that a particular feature, structure, material, or characteristic described in connection with the embodiment is included in at least one embodiment of the certain exemplary embodiments of the present disclosure. Thus, the appearances of the phrases such as “in one or more embodiments,” “in certain embodiments,” “in one embodiment” or “in an embodiment” in various places throughout this specification are not necessarily referring to the same embodiment of the certain exemplary embodiments of the present disclosure. Furthermore, the particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.
While the specification has described in detail certain exemplary embodiments, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing, may readily conceive of alterations to, variations of, and equivalents to these embodiments. Accordingly, it should be understood that this disclosure is not to be unduly limited to the illustrative embodiments set forth hereinabove. In particular, as used herein, the recitation of numerical ranges by endpoints is intended to include all numbers subsumed within that range (e.g., 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.80, 4, and 5). In addition, all numbers used herein are assumed to be modified by the term “about.” Furthermore, all publications and patents referenced herein are incorporated by reference in their entirety to the same extent as if each individual publication or patent was specifically and individually indicated to be incorporated by reference. Various exemplary embodiments have been described. These and other embodiments are within the scope of the following claims.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2019/051585 | 2/27/2019 | WO | 00 |
Number | Date | Country | |
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62639234 | Mar 2018 | US |