Compact 3D stacked CFET architecture for composite logic cells
Patent Information
- Application Number
- JP2021564305
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-04-15
- Filing Date
- 2020-05-22
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2040-05-22
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Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119(e) from U.S. Provisional Patent Application No. 62 / 855,374, filed May 31, 2019, and entitled "Compact 3D Stacked CFET Architecture for Complex Logic Cells," and U.S. Patent Application No. 16 / 849,630, filed April 15, 2020, and entitled "Compact 3D Stacked CFET Architecture for Complex Logic Cells," the disclosures of which are incorporated herein by reference in their entireties.
[0002] This disclosure relates to microelectronic devices, including semiconductor devices, transistors and integrated circuits, including designs and methods for the microfabrication of such devices. [Background technology]
[0003] The background description provided herein is intended to generally describe the context of the present disclosure. The inventors' work to the extent described in this background section and aspects of the description that would not otherwise be found to be prior art at the time of filing are not admitted, either explicitly or implicitly, as prior art to the present disclosure.
[0004] Integrated circuits are widely used in the electronics industry to provide electronic devices such as smartphones and computers. An integrated circuit (IC) contains many semiconductor devices, such as transistors and capacitors, which are interconnected by wiring on a semiconductor substrate. There is an ever-increasing demand for smaller and faster ICs to support more and more complex functions in electronic devices. This demand is forcing the semiconductor manufacturing industry to reduce the area of ICs on a substrate while at the same time improving the performance and power consumption efficiency of ICs.
[0005] In the fabrication of semiconductor ICs (especially on a microscopic scale), various fabrication processes such as film formation deposition, etching mask creation, patterning, material etching and removal, and doping processes are performed. These processes are performed repeatedly to form the desired semiconductor device elements on a substrate. Historically, in microfabrication, IC transistors are fabricated in one plane and the IC wiring / metallization is formed on top of this active device plane, and is therefore considered a two-dimensional (2D) circuit or 2D fabrication. Scaling efforts have significantly increased the number of transistors per unit area in 2D circuits, allowing different functional circuits, such as logic and memory circuits, to be integrated on the same semiconductor substrate. However, as scaling evolves to single-digit nanometer semiconductor device processing nodes, 2D scaling efforts face greater challenges. Semiconductor device manufacturers have expressed a desire for three-dimensional (3D) semiconductor circuits with transistors stacked on top of each other as an alternative to further scaling ICs. Summary of the Invention
[0006] The techniques described herein enable transistor-on-transistor 3D integration without increasing pin density (i.e., density of access points to logic cells) to such an extent that cell scaling gains are compromised by poorer routability due to pin access congestion. According to one aspect (1) of the present disclosure, a three-dimensional (3D) integrated circuit (IC) is provided. The 3D IC includes a substrate having a substrate surface and a power rail disposed within the substrate. A first semiconductor device is disposed within the substrate and disposed above the power rail along a thickness direction of the substrate substantially perpendicular to the substrate surface, the first semiconductor device having a first gate and a first pair of source-drain regions disposed on either side of the first gate. A second semiconductor device is disposed within the substrate and stacked above the first semiconductor device along a thickness direction, the second semiconductor device having a second gate and a second pair of source-drain regions disposed on either side of the second gate, the first gate being physically separated from the second gate. A conductive gate-to-gate strap connection extends from the first gate to the second gate such that the first gate is electrically connected to the second gate.
[0007] An embodiment (2) includes the 3D IC of embodiment (1), wherein the gate-to-gate strap includes at least one vertical contact extending from the first gate to the second gate.
[0008] An embodiment (3) includes the 3D IC of embodiment (2), in which the first gate and the second gate are stacked in the same straight line.
[0009] An embodiment (4) includes the 3D IC of embodiment (3), wherein the gate-to-gate strap includes a plurality of vertical contacts that are physically separated from one another.
[0010] An embodiment (5) includes the 3D IC of embodiment (1), wherein the first gate and the second gate are stacked in a staggered arrangement.
[0011] Example (6) includes the 3D IC of example (5), further including a first gate contact connected to the first gate and a second gate contact connected to the second gate, the first gate contact having a greater vertical height than the second gate contact.
[0012] A seventh aspect includes the 3D IC of sixth aspect, further including a wiring layer disposed within the substrate and above the second semiconductor device along a thickness direction, the first and second gate contacts each extending vertically to connect with the wiring layer.
[0013] An embodiment (8) includes the 3D IC of embodiment (1), further including an integrated epitaxial structure connecting a source-drain region of the first semiconductor device with a source-drain region of the second semiconductor device.
[0014] An embodiment (9) includes the 3D IC of embodiment (8), wherein the integrated epitaxial structure is configured to provide a common output pin from the 3D IC.
[0015] An embodiment (10) includes the 3D IC of embodiment (1), further including a powerwall extending perpendicularly from the power rail.
[0016] An embodiment (11) includes a 3D IC including a substrate having a substrate surface, a first stack of semiconductor devices stacked along a thickness of the substrate, and a second stack of semiconductor devices stacked along the thickness of the substrate and adjacent to the first stack in a direction along the substrate surface. Each semiconductor device of the first and second stacks includes a gate and a pair of source-drain regions on either side of the respective gate, and each gate of the first and second stacks is a split gate. A gate contact is physically connected to the first split gate of a first one of the semiconductor devices, the gate contact forming at least a part of a local interconnect structure electrically connecting the first semiconductor device to a second semiconductor device in the 3D IC.
[0017] An embodiment (12) includes the 3D IC of embodiment (11), wherein the first and second semiconductor devices are stacked sequentially in a first stack of semiconductor devices.
[0018] Example (13) includes the 3D IC of example (12), wherein the gate contact is a gate-to-gate strap extending vertically from the first split gate to the second split gate of the second semiconductor device such that the first semiconductor device and the second semiconductor device are electrically connected.
[0019] Example (14) includes the 3D IC of example (13), further including an interconnect layer disposed over the first and second stacks of semiconductor devices in a thickness direction, and a vertical contact extending vertically from the second split gate to provide a common input to the first and second semiconductor devices.
[0020] An embodiment (15) includes the 3D IC of embodiment (12), wherein the first split gate is staggered relative to the second split gate of the second semiconductor device.
[0021]
[0023] Example (16) includes the 3D IC of Example (15), further including an interconnect layer disposed over the first and second stacks of semiconductor devices in a thickness direction, a first vertical contact extending vertically from the first split gate to the interconnect layer, and a second vertical contact extending vertically from the second split gate to the interconnect layer, the first vertical contact having a greater height than the second vertical contact.
[0022] An embodiment (17) includes the 3D IC of embodiment (11), wherein the first and second semiconductor devices are disposed in the first and second stacks, respectively.
[0023] Example (18) includes the 3D IC of example (17), wherein the local interconnect structure electrically connects the first split gate to a second split gate in a second stack of semiconductor devices.
[0024] Example (19) includes the 3D IC of example (18), wherein the gate contact includes a horizontal interconnect structure extending from the first stack to the second stack along the substrate surface.
[0025] An embodiment (20) includes the 3D IC of embodiment (18), wherein the local interconnect structure electrically connects the first split gate to a source-drain region of a semiconductor device in the second stack.
[0026] An embodiment (21) includes the 3D IC of embodiment (20), wherein the gate contact includes a horizontal interconnect structure extending from the first stack to the second stack along the substrate surface.
[0027] Example (22) includes the 3D IC of example (21), further including a local interconnect tub extending from the source-drain region in a direction along the substrate surface, with a vertical contact extending vertically from the first split gate to the local interconnect tub.
[0028] It should be noted that this Summary section does not specify every embodiment and / or all novel aspects of the present disclosure or claimed invention. Instead, this Summary provides only a preliminary discussion of various embodiments and corresponding points of novelty over the prior art. For further details and / or possible aspects of the invention and embodiments, the reader is directed to the Detailed Description section and corresponding figures of the present disclosure, which are discussed further below. [Brief description of the drawings]
[0029] Aspects of the present disclosure are best understood by examining the following detailed description in conjunction with the accompanying drawings, in which: Figure 1 is a schematic diagram of a semiconductor device according to an embodiment of the present invention;
[0030] [Figure 1]An example of heterogeneous 3D integration is shown. [Diagram 2] An example of homogeneous lamination is shown below. [Diagram 3] 3D IC with relatively poor area scaling. [Figure 4] FIG. 1 is a logic diagram of a two-input XOR logic circuit that may be implemented in accordance with the techniques disclosed herein. [Figure 5A] FIG. 1 is a top plan view of an XOR cell used in a gate-on-gate stack. [Figure 5B-5C] 5B is a vertical cross-sectional view of the source-drain plane of the cell of FIG. 5A, and FIG. 5C is a vertical cross-sectional view of the gate plane of the cell of FIG. 5A. [Figure 6A-6B] 1 illustrates an overview of a technical architecture for miniaturizing composite logic cells, such as XOR logic functions, while minimizing pin access congestion issues, in accordance with an embodiment of the present disclosure. [Figure 7] FIG. 2 is a detailed diagram of an XOR logic circuit having five CFETs that may be implemented in accordance with an embodiment of the present disclosure. [Figure 8A] FIG. 2 is a detailed view of a vertical cross section 1 of an XOR cell according to an embodiment of the present disclosure. [Figure 8B] FIG. 2 is a detailed view of a vertical cross section 2 of an XOR cell according to an embodiment of the present disclosure. [Figure 8C] FIG. 2 is a detailed view of a vertical cross section 3 of an XOR cell according to an embodiment of the present disclosure. [Figure 8D] FIG. 2 is a detailed view of a vertical cross section 4 of an XOR cell according to an embodiment of the present disclosure. [Figure 8E] FIG. 2 is a detailed view of a vertical cross section 5 of an XOR cell according to an embodiment of the present disclosure. [Figure 8F] FIG. 2 is a detailed view of a vertical cross section 6 of an XOR cell according to an embodiment of the present disclosure. [Figure 8G] FIG. 2 is a detailed view of a vertical cross section 7 of an XOR cell according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0031] The inventive concept is best explained by its specific embodiments. The embodiments are described in detail herein with reference to the accompanying drawings, in which like reference numerals refer to like features throughout. It should be understood that the term "invention" as used herein refers to the inventive concept underlying the embodiments described below, and not simply the embodiments themselves. It should further be understood that the general inventive concept is not limited to the exemplary embodiments described below, and the following description should be read in this light.
[0032] Additionally, as used herein, the word "exemplary" means "serving as an example, instance, or illustration." Any embodiment of a structure, process, design, technique, or the like described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other such embodiments. No particular quality or suitability of examples shown herein as exemplary is intended or should be inferred.
[0033] Additionally, spatial relationship terms such as "lower," "below," "lower side," "upper," "above," and the like may be used herein for ease of description to describe the relationship of one element or feature to another element or feature as shown. The spatial relationship terms are intended to encompass various orientations of the device in use or operation other than that shown in the figures. The device may be reoriented (rotated 90 degrees or at other orientations) and the spatial relationship descriptors used herein may be similarly interpreted accordingly.
[0034] It should be understood that the order of description of the various steps described herein has been presented for clarity. In general, these steps may be performed in any suitable order. In addition, although each of the various features, techniques, configurations, etc. herein may be described in various places in this disclosure, it is intended that each of these concepts may be performed independently of one another or in combination with one another. Thus, the present invention can be embodied and viewed in many different ways.
[0035] As noted in the background, semiconductor device manufacturers have expressed a desire for three-dimensional (3D) semiconductor circuits, in which transistors are stacked on top of each other, as an alternative means of scaling ICs beyond traditional 2D scaling. 3D integration, or vertical stacking of semiconductor devices, aims to overcome the limitations of 2D scaling by increasing transistor density per volume, rather than area. While device stacking has been successfully demonstrated and implemented by the flash memory industry by adopting 3D NAND, its application to random logic designs is much more difficult in practice. 3D integration for logic chips such as CPUs (Central Processing Units), GPUs (Graphics Processing Units), FPGAs (Field Programmable Gate Arrays) and SoCs (Systems on Chips) is primarily achieved through two approaches. One approach is heterogeneous stacking, and the other approach is homogeneous stacking.
[0036] FIG. 1 shows an example of heterogeneous 3D integration using wafer / chip stacking and through silicon via (TSV) technology, as disclosed in "Process Integration Aspects enabling 3D sequential stacked planar and FINfet Technology, Anne VanDooren, IMEC PTW Spring 2018". In this 3D approach, each chip is designed and manufactured optimized for a different specific task, and 3D integration is used as an efficient packaging technique to build stacked SoCs. For example, as shown diagrammatically in FIG. 1, IC 100 includes chip 101 that may be optimized to include chemical and biological sensors, chip 103 specializes in other sensors and imagers, and chip 105 includes nanodevices and MEMS devices. Chip 107 can be optimized for RF, ADC and / or DAC functions, and chip 109 can provide a memory stack. Chip 111 can be designed for a processor, and chip 113 can specialize in providing energy / power to the entire IC. The TSV 115 is provided to integrate various functional chips into the small package 100. Details of the heterogeneous integration method are published in the October 2019 issue of "Heterogeneous Integration Roadmap, 2019 Edition" (see eps.iee.org / hir).
[0037] FIG. 2 shows an example of a homogeneous stacking approach disclosed in "Monolithic 3D IC: The Time is Now, Brian Cronquist and Zvi Or-Bach, Monolithic, 2014 Intl. Workshop on Data-Abundant System Technology, April 2014". This approach uses wafer bonding processing to overcome the density loss associated with micron-sized TSVs used for chip stacking. In this bonding approach, a base wafer 210 is processed to form several layers of devices such as nMOS 211 and pMOS 213 and metallization / wiring 215. A thinned SoI (silicon on insulator) layer 220, often referred to as a transfer donor layer, is then placed on top of the base wafer 210 and bonded thereto via oxide-oxide bonds 225 to form the completed structure 200. This wafer bonding method requires much smaller via dimensions (approximately 100 nm pitch) compared to the heterogeneous chip stacking approach described above, resulting in better inter-tier connections. However, the inventors have recognized that this approach is not truly monolithic integration because independently processed wafers or wafer portions are stacked on top of each other. Thus, wafer bonding does not provide a true scaling solution for semiconductor manufacturing. Furthermore, the process complexity and cost overhead associated with this wafer bonding process falls short of the scaling goals associated with true monolithic 3D integration.
[0038] True monolithic 3D integration involves fabricating multiple device levels on the same silicon substrate. 3D NAND is an example of true monolithic integration of memory chips. True monolithic integration of 3D logic is more challenging, in part, due to the diverse wiring required to connect and function each device layer.
[0039] The techniques described herein provide device architectures and corresponding local interconnect structures that enable efficient and compact monolithic integration of transistors into 3D logic functions. The techniques include a comprehensive set of vertical and lateral local interconnect structures that enable efficient and compact design of composite logic cells in transistor-on-transistor 3D integration processes.
[0040] As mentioned above, 3D integration approaches include wafer stacking using through silicon vias (TSVs), sequential 3D junctions, and monolithic (true monolithic) 3D integration, which builds multiple device levels from a single silicon substrate. Depending on the granularity of the units being stacked, 3D integration approaches can be further classified into macro-on-macro 3D approaches, gate-on-gate 3D approaches, and transistor-on-transistor 3D approaches.
[0041] In the macro-on-macro 3D approach, functional blocks or entire logic macros are stacked. Stacking entire blocks can be implemented well even with sparse connections, so a TSV-based approach may be useful. In the gate-on-gate 3D approach, functional blocks are split into two tiers by stacking standard cells (basic building blocks in logic design) on top of each other, and wiring levels can be placed in the space between the device tiers. FIG. 5C shows a 3D architecture with five wiring levels between the device faces, as described in more detail below. Gate-on-gate can be implemented using sequential 3D, but this approach has very limited scaling benefits. Implementing gate-on-gate 3D with a monolithic integration approach is made difficult by the need to integrate multiple wiring levels between the two device levels to successfully complete the intra-cell wiring of each cell and the necessary inter-cell wiring.
[0042] In the transistor-on-transistor 3D approach, individual transistors are stacked vertically to achieve a very high density of devices per volume. While this approach promises cost-effective scaling, there are concerns that forming simple logic cells (such as NAND, NOR, AOI, etc.) with stacked transistors reduces the cell's footprint to the point where it becomes inefficient or difficult to connect a cell to the rest of the design, creating a bottleneck commonly referred to as pin access congestion. That is, one challenge with transistor-on-transistor 3D integration is that vertically stacked transistors can be inherently difficult to connect from wiring levels located above the device surface. This can result in either poor area scaling of the cells (in the case of staggered transistor contacts) or excessive density of pins above the cells resulting in unroutable wiring congestion. FIG. 3 illustrates a 3D IC with relatively poor area scaling. As can be seen, IC structure 300 includes cells including stacked n-type transistors 301-307 and stacked p-type transistors 309-315, and cell boundary 317. Pins 319 connect from the wiring level to the gates of each transistor. As can be seen, accessing stacked devices from the wiring level above can require expensive pyramidal staircases of poly gates.
[0043] The techniques described herein enable transistor-on-transistor 3D integration without increasing pin density (i.e., density of access points to logic cells) to such an extent that cell scaling gains are overshadowed by degradation of writability due to pin access congestion.
[0044] The design described herein avoids logic cells with a large number of inputs to transistors (e.g., AOI22 with 4 inputs to 4 transistors) by pre-synthesizing more composite logic cells that internally link multiple operations. This involves building logic primitives with a large number of transistors to the number of input signals. This approach is known as large block synthesis and is being considered in the industry. The techniques described herein also use new local interconnect structures that allow transistor placement in three dimensions to be efficiently routed in these higher order logic cells. An XOR (exclusive-or) logic function is an example of a composite or higher order logic cell. FIG. 4 is a logic diagram of a two-input XOR logic circuit that may be implemented by the techniques disclosed herein. As can be seen, the A1 input of XOR circuit 400 is fed to inverter 401, and the A2 input is fed to inverter 403, which is connected in series with inverter 405. Inverters 401, 403, and 405 may each be implemented as complementary FETs. The outputs of inverters 401 , 403 and 405 are fed to further complementary FET circuits 407 and 409 which are cross-coupled to provide the logic output of XOR cell 400 .
[0045] FIG. 5A is a top plan view of an XOR cell showing a 2D rendering of an XOR cell used in gate-on-gate stacking. Legend 501 indicates structures and / or materials associated with various regions of the layout. As can be seen, the layout of cell 500 may include multiple source-drain (SD) tracks interleaved with multiple gate (G) tracks along the east-west direction of the substrate and extending in the north-south direction across active region 503. As known to those skilled in the art, these alternating SD and G regions form an array of semiconductor devices in the east-west direction of the substrate. The cell boundaries are formed by power rails 505 at the top and bottom and poly gate tracks G at the left and right edges of the figure. Examples of device contacts 507 and 509 are also shown. This gate-on-gate approach results in relatively large cell sizes and wiring complexity. In particular, the cell size is 7T (tracks) high and 8 poly tracks wide as shown in FIG. 5A. Therefore, three levels of metal are required to complete the intra-cell wiring (M0, M1 and Mx). In a gate-on-gate stack embodiment, these three wiring levels may be placed in the space between successive device tiers.
[0046] FIG. 5B is a vertical cross-sectional view of the source-drain plane of the cell of FIG. 5A, and FIG. 5C is a vertical cross-sectional view of the gate plane of the cell of FIG. 5A. The structure 500 includes an active area 503, and a buried power rail 505 is provided in the substrate below the active device plane. An intermediate power rail 506 is also provided. As can be seen, a bottom level 511 of semiconductor devices, a wiring level 513, a middle level 515 of semiconductor devices, and a top level 517 of semiconductor devices are stacked thicknesswise on the substrate. A bottom layer 519 of 2x routing tracks is also shown. As can be seen, the gate-on-gate stack architecture of FIGS. 5A-5C includes five wiring levels in the wiring level 513 between the device planes. This configuration is disclosed in U.S. Patent Application Serial No. 16 / 667,442, entitled "ARCHITECTURE FOR MONOLITHIC 3D INTEGRATION OF SEMICONDUCTOR DEVICES," the entire contents of which are incorporated herein by reference. As mentioned above, FIGS. 5A-5C show that implementing gate-on-gate 3D with monolithic integration techniques is made difficult by the need to integrate multiple wiring levels (here five levels) between the two device levels to successfully complete the intra-cell wiring of each cell and the required inter-cell wiring.
[0047] 6A and 6B show an overview of a technology architecture for miniaturizing a composite logic cell, such as an XOR logic function, while minimizing pin access congestion issues, according to an embodiment of the present disclosure. FIG. 6A shows a top view layout view at two horizontal cross sections A and B through the Z axis of the cell, and FIG. 6B shows vertical cross sections 1-7 along the y axis in seven planes numbered in FIG. 6A. The top view of structure 600 is not a true cross section along A and B, but rather shows parts of the structure transparent to illustrate the structural features below planes A and B. Legend 601 is provided to associate structures and / or materials in FIG. 6A with the same structures and / or materials in FIG. 6B. As can be seen from the view in FIG. 6A, the cell size is 5T (tracks) in height and 6 poly tracks in width, a significant scaling of the XOR cell compared to the gate-on-gate configuration of FIGS. 5A-5C. An overview of various structural features enabling this scaling benefit is shown in FIG. 6B. As can be seen, the features include buried power rails BPR, power walls PW, local interconnect tubs LIT, wiring M0, local interconnects LI, gate straps GS, vertical contacts VC, and integrated epitaxial structures ME.
[0048] As can be seen from cross section 1 in FIG. 6B, structure 600 includes a local interconnect tab LIT that connects the SD region of the device to a "power wall" PW that rises from the buried power rail BPR. Details of such power walls are disclosed in U.S. Patent Application Publication No. 2020 / 0075489, entitled "POWER DISTRIBUTION NETWORK FOR 3D LOGIC AND MEMORY," the entire disclosure of which is incorporated herein by reference. This feature is achieved by transistor-on-transistor stacking that completes the entire composite logic cell within the device stack, leaving the wiring (which would have to cross the power wall) in the space above the device stack.
[0049] Now, referring to cross section 2 of FIG. 6B, the device is implemented as a "split gate", i.e., each transistor can be contacted independently, even if it is an n / p pair. A new gate-to-gate strap GS is introduced to facilitate a common connection to the pair of stacked gates. A new "local interconnect" LI to the gate structure is introduced to allow the output of one transistor in the 3D configuration to be used as a signal input for another transistor. As can be seen in cross section 3, a vertical contact VC is introduced to connect the top local interconnect tab LIT to the bottom gate local interconnect LI to route the output of the top transistor as a signal input for the bottom transistor.
[0050] As can be seen in cross section 4 of FIG. 6B, a split gate configuration is provided where each transistor can receive a separate input signal. To facilitate this, pairs of gate contacts VC with different heights and staggered gate extensions are introduced. In cross section 5, an integrated epitaxial ME structure is introduced to efficiently collect the output of several vertically stacked transistors to a common output pin. The ME is shown semi-transparent to visualize the stacked SD regions within the ME. In cross section 6, the flexibility of the vertical connection VC is shown, which can connect the source or drain of a transistor to the wiring plane M0 above and the local interconnect LI plane below. In cross section 7 of FIG. 6B, a bottom-side vertical contact VC to the gate local interconnect LI is introduced to connect a signal input from one transistor in the top row to another transistor in the bottom row.
[0051] The techniques described herein will now be described in more detail with reference to Figures 7 and 8A-8G. For convenience of describing the embodiments, the description will focus on an XOR logic function (exclusive OR). The XOR logic function is an example of a compound or higher order logic cell, although other logic functions are contemplated herein.
[0052] Figure 7 shows five complementary field effect transistors (CFETs). 1 ~CFET5 7 is a detailed diagram of an XOR logic circuit implemented using the FETs Px and Nx. All ten FETs of the circuit are shown. In FIG. 7, the designation Px refers to the p-type transistor of the CFET numbered with x, and Nx refers to the n-type transistor of the CFET numbered with x. Additionally, SD1 refers to the first source / drain region of the associated transistor, SD2 refers to the second source / drain region of the associated transistor, and G refers to the gate of the associated transistor. For example, "P1 SD1 " refers to the first SD region of the p-type transistor of the CFET, numbered 1, and "N1 SD2 " refers to the second SD region of the n-type transistor of the CFET numbered 1. Similarly, "P1 G " refers to the gate region of the p-type transistor of the CFET numbered 1. These CFETs are implemented as a stacked CFET structure as described in detail below. Figure 7 shows diagrammatically the necessary intra-cell connections (thin lines) formed by local interconnects and contacts, also as described below.
[0053] Figures 8A-8G are detailed views of sections 1-7 of Figure 6A, respectively, in accordance with embodiments of the present disclosure. The numbering scheme of Figures 6A and 6B is followed throughout Figures 8A-8G. The legend 601 and plan views of Figure 6A are reproduced in each of Figures 8A-8G for reference. These plan views of structure 800 are not true cross sections along A and B, but rather show portions of structure 800 in transparency to illustrate structural features below planes A and B.
[0054] 8A is a detailed view of a vertical cross section 1 of an XOR cell according to an embodiment of the present disclosure. The structure 800 represents a portion of a monolithic semiconductor substrate having a substantially flat substrate surface. As can be seen, the structure 800 includes a recessed power rail 803a that functions as a VDD that supplies power to the p-type transistors, and a recessed power rail 803b that functions as a VSS that supplies power to the n-type transistors. SD region P3 SD1 , N3 SD1 , N2 SD1 , P2 SD1are stacked on top of each other in sequence across the thickness of the substrate 801. In the embodiment of FIG. 8A, the SD regions of the transistors are stacked collinearly within the active device column 812 of the structure. Additionally, SD region P3 SD1 and N3 SD1 is the CFET of the XOR cell 3 form a complementary pair of the SD region associated with P2 SD1 and N2 SD1 is the CFET of the XOR cell 2 , np ...
[0055] A number of local interconnect and contact structures are provided to electrically connect the semiconductor devices as required to form the XOR circuit. Specifically, the recessed power rail 803a is connected to the P3 SD1 and P2 SD1 , and recessed power rail 803b is connected to N3 by power wall 805b and horizontal interconnect tabs 809 and 810. SD1 and N2 SD1 8A , which are connected to the respective M1 and M2 layers. M0 layer wiring 811 is also shown. The structural features of FIG. 8A are shown in a plan view reproduced from FIG. 6A , which is partially transparent to show the structural features below planes A and B. For example, plan view A shows local interconnect tab 808 and local interconnect tab 810, which lies in a plane below the plane of 808. Similarly, plan view B shows local interconnect tab 809 and local interconnect tab 807, which lies in a plane below the plane of 809.
[0056] 8B is a detailed view of vertical cross section 2 of the XOR cell according to an embodiment of the present disclosure. As can be seen, gate region P3 G , N3 G , N2 G and P2 G are stacked on top of each other in the thickness direction of the substrate. As described above in FIG. 6, these gate regions are implemented as split gates so that each gate region can be contacted independently. In the embodiment of FIG. 8B, the gate regions of the transistors are stacked collinearly. Local interconnects 813 and 815 extend in the x-direction and connect gate region P5, described below. G , N5 G The gate-to-gate straps 817 and 818 are connected to P2 G and N2 G Further, gate contact 819 connects to wire 811 to provide the A2 input to the XOR cell. Thus, the transparency of plan view A allows the viewer to see wire 811, the gate contact 819 underneath the wire, and the P2 G Similarly, the transparency of Plan B allows the interconnect 815 and the gate strap 817 under P3 to be seen. G The interconnects 813 below are shown.
[0057] 8C is a detailed view of vertical cross section 3 of the XOR cell according to an embodiment of the present disclosure. As can be seen, SD region P3 SD2 , N3 SD2 , N2 SD2 , P2 SD2 are stacked on top of each other collinearly within the active device column 812 of the structure. SD2 , N3 SD2 , N2 SD2 , P2 SD2 is the CFET of the XOR cell 3 and CFET 2 A second SD region of the transistor is formed. Further, SD region P3 SD2 , N3 SD2 , N2 SD2 and P2 SD2 are the CFETs of the XOR cell, respectively. 5and CFET 4 P5, which forms the first drain region of the transistor SD1 , N5 SD1 , N4 SD1 , P4 SD1 As can be seen from the figure, P2 SD2 and P4 SD1 The common SD region forming N2 is connected to the local interconnect 815 of the lower stage of the CFET via a horizontal interconnect tab 821 and a vertical contact 823. SD2 and N4 SD1 The common SD region forming the N3 interconnect is connected to the local interconnect 813 via the horizontal interconnect tab 825 and the vertical contact 827. Thus, the transparency of the top view A allows the wiring 811 and the N3 SD2 The interconnect tab 821 and SD contact 823 underneath P3 are shown. Similarly, the transparency of Plan B allows the interconnect 813 and P3 SD2 8 and the underlying interconnect 815 are shown.
[0058] 8D is a detailed view of vertical cross section 4 of an XOR cell according to an embodiment of the present disclosure. As can be seen, split gate region P5 G , N5 G , N4 G and P4 G are stacked on top of each other in the thickness direction of the substrate. G and N4 G The gate contacts 839 and 841 are staggered relative to one another so that the gate contacts 839 and 841 are at different heights and can contact the top interconnect M0 level interconnects 833 and 837. Interconnect 835 is also shown. Split gate region P5 G and N5 G are connected to gate contacts 829 and 831, respectively.
[0059] 8E is a detailed view of a vertical cross section 5 of an XOR cell according to an embodiment of the present disclosure. As can be seen, SD region P5 SD2 , N5 SD2 , N4 SD2 and P4 SD2are stacked on top of each other collinearly within the active device column 812 of the structure. SD2 , N5 SD2 , N4 SD2 and P4 SD2 form the second SD regions of the CFET5 and 4 transistors of the XOR cell. Furthermore, these SD regions are provided as an integrated epitaxial growth region 839 to effectively collect the output of several vertically stacked transistors to a common output pin of the XOR circuit, which is provided by SD contact 841 and M0 wiring 835.
[0060] 8F is a detailed view of a vertical cross section 6 of an XOR cell according to an embodiment of the present disclosure. As can be seen, the SD region N1 SD1 , P1 SD1 are stacked on top of each other collinearly within the active device column 812 of the structure. SD1 , P1 SD1 is the CFET of the XOR cell 1 As can be seen from the figure, the common SD region P1 SD1 is connected to wiring 833 via horizontal interconnect tab 843 and vertical contact 845. Similarly, N1 SD1 The SD regions forming the wiring 833 are connected to local interconnect 831 via horizontal interconnect tab 847 and vertical SD contact 849. Local interconnect 829 is also shown. Thus, Plan A is transparent to reveal wire 833, interconnect tab 843, and SD contact 845. Similarly, Plan B is transparent to reveal interconnect tab 847, contact 849, and interconnect 831.
[0061] 8G is a detailed view of a vertical cross section 7 of an XOR cell according to an embodiment of the present disclosure. As can be seen, the gate region N1 G and P1 G are stacked on top of each other in the thickness direction of the substrate. In the embodiment of FIG. 8G, the gate regions of the transistors are stacked collinearly. Gate-to-gate straps 851 and 852 are stacked on top of P1G and N1 G 8. Additionally, gate contact 853 connects to wire 837 to provide a portion of the A1 input to the XOR cell. Gate contact 855 connects the common gate to local interconnect 829. Thus, the transparency of plan view A allows the viewer to see wire 837, gate contact 853 underneath the wire, and N1 G Similarly, the transparency of Plan B allows the interconnect 829 and the gate strap 851 under N1 to be seen. G An underlying gate contact 855 is shown.
[0062] The terms used herein are for the purpose of describing particular embodiments only and are not intended to limit the present invention. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms unless the context clearly dictates otherwise. Furthermore, as used herein, the terms "comprise" and / or "comprising" specify the presence of stated features, integers, steps, operations, elements and / or components, but are understood not to exclude the presence or addition of one or more features, integers, steps, operations, elements, components and / or groups thereof.
[0063] The corresponding structures, materials, acts, and equivalents of all means-plus-function or step-plus-function elements set forth in the following claims are intended to include any structures, materials, or acts for performing functions in combination with other claimed elements specifically recited in the claims. The description of the present invention has been presented for purposes of illustration and description, and is not intended to be exhaustive or to limit the invention in the disclosed form. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the invention. The above embodiments have been selected and described in order to best explain the principles of the invention and its practical application, and also to enable others skilled in the art to understand the invention in various embodiments with various modifications suitable for the particular use contemplated.
[0064] The above description is intended to illustrate possible implementations of the inventive concept, but is not intended to be limiting. Many variations, modifications, and alternatives will become apparent to those skilled in the art upon review of this disclosure. For example, equivalent components may be substituted for those shown and described, elements and methods described separately may be combined, and elements described separately may be distributed across multiple components. Thus, the scope of the present invention should be determined not by reference to the above description, but by reference to the appended claims and their full scope of equivalents.
[0065] Throughout this specification, the use of "one embodiment" or "an embodiment" means that a particular feature, structure, material, or characteristic described in connection with an embodiment is included in at least one embodiment, but does not necessarily indicate that it is present in all embodiments. Thus, the appearances of the phrase "in one embodiment" in various places throughout this specification do not necessarily refer to the same embodiment. Furthermore, the particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.
Claims
1. a substrate having a substrate surface; a power rail disposed within the substrate; a first semiconductor device disposed on the power rail along a thickness direction of the substrate generally perpendicular to the substrate surface, the first semiconductor device having a first gate and a first pair of source-drain regions disposed on either side of the first gate horizontally along the substrate surface; a second semiconductor device stacked on the first semiconductor device along the thickness direction, the second semiconductor device having a second gate and a second pair of source-drain regions disposed on either side of the second gate horizontally along the substrate surface, the first gate being physically separated from the second gate; a second semiconductor device, the first gate having a top surface in a first plane perpendicular to the thickness direction, the second gate having a bottom surface in a second plane perpendicular to the thickness direction, a first opposing portion of the top surface directly opposite a second opposing portion of the bottom surface; a conductive gate-to-gate strap connection including a vertical contact extending from the first facing portion to the second facing portion, the vertical contact being included between the first facing portion and the second facing portion to electrically connect the first gate to the second gate; A three dimensional (3D) integrated circuit (IC) including:
2. The 3D IC of claim 1 , wherein the first gate and the second gate are stacked collinearly.
3. The 3D IC of claim 2 , wherein the gate-to-gate strap connection includes a plurality of the vertical contacts that are physically separated from one another.
4. 2. The 3D IC of claim 1, further comprising: an integrated epitaxial structure connecting a source-drain region of the first semiconductor device with a source-drain region of the second semiconductor device.
5. The 3D IC of claim 4 , wherein the unified epitaxial structure is configured to provide a common output pin from the 3D IC.
6. The 3D IC of claim 1 further comprising a power wall extending perpendicularly from said power rail.
7. a substrate having a substrate surface; a power rail disposed within the substrate; a first semiconductor device disposed on the power rail along a thickness direction of the substrate generally perpendicular to the substrate surface, the first semiconductor device having a first gate and a first pair of source-drain regions disposed on either side of the first gate horizontally along the substrate surface; a second semiconductor device stacked on the first semiconductor device along the thickness direction, the second semiconductor device having a second gate and a second pair of source-drain regions disposed on either side of the second gate horizontally along the substrate surface, the first gate being physically separated from the second gate, the first gate and the second gate being stacked in a staggered arrangement; a first gate contact connected to the first gate; a second gate contact connected to the second gate, the first gate contact having a greater vertical height than the second gate contact; A three dimensional (3D) integrated circuit (IC) including:
8. 8. The 3D IC of claim 7, further comprising a wiring layer disposed over said second semiconductor device along said thickness direction, said first and second gate contacts each extending vertically to connect with said wiring layer.
9. 1. A three dimensional (3D) integrated circuit (IC), comprising: a substrate having a substrate surface; a first stack including first and second semiconductor devices stacked in sequence along a thickness direction of the substrate; a second stack including third and fourth semiconductor devices stacked sequentially along the thickness direction of the substrate, the second stack being disposed adjacent to the first stack in a direction along the substrate surface, each semiconductor device of the first and second stacks including a respective gate and a pair of source-drain regions disposed on either side of the respective gate in a direction along the substrate surface, and each gate of the first and second stacks being a split gate; a first gate-to-gate strap connection extending vertically from a top surface of the first split gate of the first semiconductor device to a bottom surface of the second split gate of the second semiconductor device; Including, a third split gate of the third semiconductor device being staggered with respect to a fourth split gate of the fourth semiconductor device. Three dimensional (3D) integrated circuits (ICs).
10. a wiring layer provided on the first and second stacks in the thickness direction; a first vertical contact extending vertically from the second split gate to provide a first common input to the first and second semiconductor devices; The 3D IC of claim 9 further comprising:
11. an interconnect layer disposed over the first and second stacks of semiconductor devices in the thickness direction; a second vertical contact extending vertically from the third split gate to the wiring layer; a third vertical contact extending vertically from the fourth split gate to the wiring layer, the second vertical contact having a greater height than the third vertical contact; The 3D IC of claim 9 , further comprising:
12. a third stack including a fifth semiconductor device and a sixth semiconductor device stacked sequentially along the thickness direction of the substrate, the third stack being disposed adjacent to the second stack in the direction along the substrate surface, the fifth and sixth semiconductor devices including respective gates and pairs of source-drain regions disposed on either side of the respective gates in the direction along the substrate surface, and each gate of the fifth and sixth semiconductor devices being a split gate; a second gate-to-gate strap connection extending vertically from a top surface of the fifth split gate of the fifth semiconductor device to a bottom surface of the sixth split gate of the sixth semiconductor device; The 3D IC of claim 11 further comprising:
13. a fourth vertical contact extending vertically from the sixth split gate to provide a second common input to the fifth and sixth semiconductor devices; The 3D IC of claim 12 further comprising:
14. 14. The 3D IC of claim 13, wherein the wiring layer includes a first horizontal interconnect structure extending from the second stack to the third stack and electrically connecting the second vertical contact to the fourth vertical contact.
15. 15. The 3D IC of claim 14, wherein the wiring layer further includes a second horizontal interconnect structure for electrically connecting the third vertical contact connected to the fourth split gate to a source-drain region of the sixth semiconductor device.
16. a local interconnect tub extending from the source-drain region of the sixth semiconductor device in the direction along the substrate surface; a fifth vertical contact extending from the second horizontal interconnect structure to the local interconnect tab; The 3D IC of claim 15 further comprising:
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