Semiconductor device and its manufacturing method

The semiconductor device addresses parasitic capacitance issues in miniaturized resistive elements by employing a dual-layer resistive structure with distinct electrodes and a tapered side surface, enhancing speed and reducing power consumption.

JP7681022B2Active Publication Date: 2025-05-21SONY SEMICON SOLUTIONS CORP
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Patent Information

Application Number
JP2022533694
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-29
Filing Date
2021-04-06
Publication Date
2025-05-21
Estimated Expiration
2041-04-06

AI Technical Summary

Technical Problem

The miniaturization of resistive elements in semiconductor devices leads to an increase in parasitic capacitance between electrodes, hindering high-speed operation and reducing power efficiency.

Method used

A semiconductor device design that includes a resistive layer with distinct electrodes contacting different surfaces, utilizing a dual-layer resistive structure with varying resistivities and a tapered side surface to maintain electrode separation and adjust resistance values precisely, thereby reducing parasitic capacitance.

Benefits of technology

This design effectively minimizes parasitic capacitance, enabling high-speed and low-power consumption operations by maintaining electrode separation and allowing precise resistance value adjustment.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

[Problem] To provide a semiconductor device with which it is possible to reduce parasitic capacitance between electrodes for a resistance element, and a manufacturing method therefor. [Solution] A semiconductor device according to the present disclosure comprises: a substrate; a first resistance layer provided on the substrate; a first electrode that is connected to a lower surface of the first resistance layer; and a second electrode that is connected to an upper surface of the resistance layer.
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Description

[Technical field]

[0001] The present disclosure relates to a semiconductor device and a manufacturing method thereof. [Background technology]

[0002] When arranging a resistive element (resistive layer) on a substrate, a structure is known in which the resistive element is arranged between wiring layers on the substrate, which makes it possible to increase the distance between the substrate and the resistive element, thereby realizing a resistive element with small parasitic capacitance.

[0003] In this case, it is possible to electrically connect a wiring layer and a resistor element by disposing two extraction electrodes between the wiring layer and the resistor element. Examples of such electrodes are via plugs and contact plugs. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2009-021509 A [Patent Document 2] JP 2018-201005 A [Patent Document 3] WO2018 / 174090 publication Summary of the Invention [Problem to be solved by the invention]

[0005] When arranging the resistive element as described above, the problem of an increase in parasitic capacitance between the electrodes becomes a problem when the resistive element is miniaturized or downsized. This is because the distance between the electrodes becomes shorter as the resistive element is miniaturized or downsized. The increase in parasitic capacitance between the electrodes becomes an obstacle to increasing the speed and reducing the power consumption of semiconductor devices.

[0006] In view of this, the present disclosure provides a semiconductor device capable of reducing the parasitic capacitance between electrodes for a resistance element, and a manufacturing method thereof. [Means for solving the problem]

[0007] A semiconductor device according to a first aspect of the present disclosure includes a substrate, a first resistive layer provided on the substrate, a first electrode in contact with a lower surface of the first resistive layer, and a second electrode in contact with an upper surface of the first resistive layer, which makes it possible to reduce parasitic capacitance between the first and second electrodes that are electrodes for the first resistive layer, for example.

[0008] The semiconductor device according to the first aspect may further include a first wiring in contact with a lower surface of the first electrode and a second wiring in contact with an upper surface of the second electrode, which makes it possible to reduce the parasitic capacitance of the first resistor layer disposed between the wiring layers, for example.

[0009] In the first aspect, the first electrode may be in contact with an upper surface of the substrate, which makes it possible to reduce the parasitic capacitance of a first resistor layer disposed between the substrate and a wiring layer, for example.

[0010] In addition, in the first aspect, the first resistance layer may include a first layer and a second layer having an electrical resistivity lower than that of the first layer, and the second layer may include a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion. This makes it possible to easily set the resistance value of the first resistance layer to a desired value, for example.

[0011] In addition, in the first aspect, the first electrode may be disposed at a position overlapping the first portion in the vertical direction, and the second electrode may be disposed at a position overlapping the second portion in the vertical direction, thereby making it possible to adjust the resistance value of the first resistance layer to a desired value, for example, by the portion of the first layer sandwiched between the first portion and the second portion.

[0012] In the first aspect, the first layer may contain a metal element and a silicon element, which allows the first layer to be a cermet layer, for example.

[0013] In the first aspect, the second layer may be provided on a lower surface of the first layer, which makes it possible to suppress, for example, a step of forming the first layer from adversely affecting the first electrode.

[0014] In the first aspect, the second layer may be provided on an upper surface of the first layer, which makes it possible to provide the second layer on the upper surface of the first layer, for example, in cases where the step of forming the first layer does not adversely affect the first electrode.

[0015] In the first aspect, the second electrode may penetrate the first layer, which makes it possible, for example, to form a hole for the second electrode by using the second layer as a stopper.

[0016] In the first aspect, the second electrode may be in contact with the second layer, which makes it possible to form a hole for the second electrode by using the second layer as a stopper, for example.

[0017] In addition, in the first side surface, the second layer may have a tapered side surface, and the first layer may be in contact with the upper surface and the tapered side surface of the second layer, which makes it possible to suppress discontinuity of the first layer, for example.

[0018] The semiconductor device of the first aspect may further include a second resistive layer provided on the substrate, a third electrode in contact with a lower surface of the second resistive layer and electrically connected to the second electrode, and a fourth electrode in contact with an upper surface of the second resistive layer. This makes it possible to realize a structure in which the first resistive layer and the second resistive layer are connected in series, for example, and in this case, it becomes possible to reduce the parasitic capacitance between the electrodes for the first resistive layer and the electrodes for the second resistive layer.

[0019] The semiconductor device of the first aspect may further include a first wiring in contact with the lower surface of the first electrode, a second wiring in contact with the upper surface of the second electrode and the lower surface of the third electrode, and a third wiring in contact with the upper surface of the fourth electrode, which makes it possible to reduce the parasitic capacitance of the second resistor layer disposed between the wiring layers, for example.

[0020] In addition, in the first aspect, at least one of the second electrode and the second wiring and the third electrode and the third wiring may form a dual damascene wiring, which makes it possible to easily form, for example, the second electrode together with the second wiring, or the third electrode together with the third wiring.

[0021] In the first aspect, the first resistive layer may be provided between the photoelectric conversion element and a signal processing circuit, which makes it possible to, for example, prevent a large-amplitude signal from being supplied from the photoelectric conversion element to the signal processing circuit.

[0022] In the first aspect, the photoelectric conversion element may be provided within the substrate, which makes it possible to prevent a large-amplitude signal from being supplied from the substrate to a signal processing circuit, for example.

[0023] In the first aspect, the photoelectric conversion element may be a single photon avalanche diode (SPAD), which can prevent a large-amplitude signal from being supplied to a signal processing circuit from a photoelectric conversion element that is prone to generating a large-amplitude signal.

[0024] In the first aspect, the substrate may have a first surface on which the first resistive layer, the first electrode, and the second electrode are provided, and a second surface on which a lens that allows light to enter the photoelectric conversion element is provided, thereby making it possible to realize, for example, a back-illuminated solid-state imaging device.

[0025] A method for manufacturing a semiconductor device according to a second aspect of the present disclosure includes forming a first electrode on a substrate, forming a first resistance layer in contact with an upper surface of the first electrode, and forming a second electrode in contact with an upper surface of the first resistance layer, thereby making it possible to reduce, for example, parasitic capacitance between the first and second electrodes that are electrodes for the first resistance layer.

[0026] In addition, in this second aspect, the first resistance layer may be formed to include a first layer and a second layer having an electrical resistivity lower than that of the first layer, and the second layer may be formed to include a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion. This makes it possible to easily set the resistance value of the first resistance layer to a desired value, for example. [Brief description of the drawings]

[0027] [Figure 1] 1 is a cross-sectional view showing a structure of a semiconductor device according to a first embodiment. [Diagram 2] 4 is a cross-sectional view showing a structure of a semiconductor device of a comparative example to the first embodiment. FIG. [Diagram 3] 10 is a cross-sectional view for explaining a defect of a semiconductor device of a comparative example of the first embodiment. FIG. [Figure 4] FIG. 2 is a cross-sectional view for explaining an advantage of the semiconductor device of the first embodiment. [Diagram 5] FIG. 11 is a cross-sectional view showing the structure of a semiconductor device according to a second embodiment. [Figure 6] FIG. 11 is a cross-sectional view for explaining an advantage of the semiconductor device according to the second embodiment. [Figure 7] 11 is a cross-sectional view (1 / 2) showing details of the structure of the semiconductor device according to the second embodiment. FIG. [Figure 8] FIG. 11 is a cross-sectional view (2 / 2) showing details of the structure of the semiconductor device according to the second embodiment. [Figure 9] FIG. 11 is a cross-sectional view (1 / 2) showing a structure of a semiconductor device according to a modified example of the second embodiment. [Figure 10] FIG. 13 is a cross-sectional view (2 / 2) showing a structure of a semiconductor device according to a modified example of the second embodiment. [Figure 11] FIG. 11 is a cross-sectional view showing the structure of a semiconductor device according to a third embodiment. [Figure 12] FIG. 11 is a cross-sectional view for explaining the structure of a semiconductor device according to a third embodiment. [Figure 13] FIG. 11 is a cross-sectional view showing the structure of a semiconductor device according to a fourth embodiment. [Figure 14] FIG. 13 is a cross-sectional view showing a structure of a semiconductor device according to a modified example of the fourth embodiment. [Figure 15] 13 is a cross-sectional view (1 / 5) showing the method for manufacturing the semiconductor device according to the fifth embodiment. [Figure 16] 13 is a cross-sectional view (2 / 5) showing the method for manufacturing the semiconductor device according to the fifth embodiment. [Figure 17] 13 is a cross-sectional view (3 / 5) showing the method for manufacturing the semiconductor device according to the fifth embodiment. [Figure 18] 13 is a cross-sectional view (4 / 5) showing the method for manufacturing the semiconductor device according to the fifth embodiment. [Figure 19] 13 is a cross-sectional view (5 / 5) showing the method for manufacturing the semiconductor device according to the fifth embodiment. [Figure 20] 13 is a cross-sectional view (1 / 2) showing a method for manufacturing a semiconductor device according to a modified example of the fifth embodiment. FIG. [Figure 21] 13 is a cross-sectional view (2 / 2) showing a method for manufacturing a semiconductor device according to a modified example of the fifth embodiment. FIG. [Figure 22] 13A and 13B are a schematic diagram and a circuit diagram showing a configuration of a semiconductor device according to a sixth embodiment. [Diagram 23] FIG. 13 is a cross-sectional view showing the structure of a semiconductor device according to a sixth embodiment. [Figure 24] 13 is another cross-sectional view showing the structure of the semiconductor device according to the sixth embodiment. FIG. [Diagram 25] 13 is a cross-sectional view (1 / 2) showing a method for manufacturing a semiconductor device according to a sixth embodiment. [Figure 26] 13 is a cross-sectional view (2 / 2) showing the method for manufacturing the semiconductor device according to the sixth embodiment. FIG. [Figure 27] FIG. 13 is a cross-sectional view (1 / 2) showing a structure of a semiconductor device according to a modified example of the sixth embodiment. [Figure 28]FIG. 23 is a cross-sectional view (2 / 2) showing a structure of a semiconductor device according to a modified example of the sixth embodiment. [Figure 29] FIG. 1 is a block diagram showing an example of the configuration of an electronic device. [Diagram 30] FIG. 1 is a block diagram showing a configuration example of a mobile object control system. [Diagram 31] 31 is a plan view showing a specific example of the setting position of the imaging unit in FIG. 30. [Diagram 32] 1 is a diagram illustrating an example of a schematic configuration of an endoscopic surgery system. [Diagram 33] 2 is a block diagram showing an example of a functional configuration of a camera head and a CCU. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0028] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings.

[0029] (First embodiment) FIG. 1 is a cross-sectional view showing the structure of a semiconductor device according to a first embodiment.

[0030] A of Fig. 1 shows a first example of the structure of the semiconductor device of the present embodiment. The semiconductor device shown in A of Fig. 1 includes a substrate 1, an interlayer insulating film 2, a wiring 3, a plug electrode 4, a resistive layer (resistive element) 5, a plug electrode 6, and a wiring 7. The wiring 3 is an example of a first wiring of the present disclosure, and the plug electrode 4 is an example of a first electrode of the present disclosure. The resistive layer 5 is an example of a first resistive layer of the present disclosure. The plug electrode 6 is an example of a second electrode of the present disclosure, and the wiring 7 is an example of a second wiring of the present disclosure.

[0031] A in FIG. 1 shows the X-axis, Y-axis, and Z-axis that are perpendicular to each other. The X-axis and Y-axis correspond to the lateral direction (horizontal direction), and the Z-axis corresponds to the longitudinal direction (vertical direction). The +Z-axis corresponds to the upward direction, and the -Z-axis corresponds to the downward direction. The -Z-axis may or may not strictly coincide with the direction of gravity.

[0032] The substrate 1 is, for example, a semiconductor substrate such as a silicon substrate. The interlayer insulating film 2 is formed on the substrate 1. The interlayer insulating film 2 is, for example, a silicon oxide film or a laminated film including a silicon oxide film and another insulating film. The wiring 3, the plug electrode 4, the resistive layer 5, the plug electrode 6, and the wiring 7 are formed in the interlayer insulating film 2 on the substrate 1.

[0033] The wiring 3 is provided in one wiring layer formed above the substrate 1. The wiring 3 is, for example, a metal layer including an Al (aluminum) layer, a W (tungsten) layer, or a Cu (copper) layer. The wiring 3 may be electrically connected to the substrate 1 directly or indirectly.

[0034] The plug electrode 4 is formed on the wiring 3 and is electrically connected to the wiring 3. The lower surface of the plug electrode 4 is in contact with the upper surface of the wiring 3. The plug electrode 4 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer. The plug electrode 4 is, for example, a via plug.

[0035] The resistive layer 5 is formed on the plug electrode 4 and is electrically connected to the plug electrode 4. The lower surface of the resistive layer 5 is in contact with the upper surface of the plug electrode 4. The resistive layer 5 is, for example, an oxide film, a nitride film, or an oxynitride film containing a metal element. An example of the metal element is a high-melting point metal element such as Ta (tantalum) element or Ti (titanium) element. The resistive layer 5 may further contain Si (silicon). An example of such a resistive layer 5 is a cermet layer such as a TaSiO layer or a TiSiO layer.

[0036] The plug electrode 6 is formed on the resistance layer 5 and is electrically connected to the resistance layer 5. The lower surface of the plug electrode 6 is in contact with the upper surface of the resistance layer 5. The plug electrode 6 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer. The plug electrode 6 is, for example, a via plug.

[0037] The wiring 7 is provided in one wiring layer formed above the substrate 1, and is included in a wiring layer different from the wiring layer including the wiring 3. Therefore, the resistance layer 5 is disposed between these wiring layers. The wiring 7 is formed on the plug electrode 6 and is electrically connected to the plug electrode 6. The lower surface of the wiring 7 is in contact with the upper surface of the plug electrode 6. The wiring 7 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer.

[0038] 1A is in contact with plug electrodes 4 and 6 which function as extraction electrodes. These plug electrodes 4 and 6 are in contact with different surfaces of the resistance layer 5, specifically, the plug electrode 4 is in contact with the lower surface of the resistance layer 5, and the plug electrode 6 is in contact with the upper surface of the resistance layer 5. Therefore, these plug electrodes 4 and 6 are in contact with different wiring layers, and are in contact with the wirings 3 and 7, respectively.

[0039] Fig. 1B shows a second example of the structure of the semiconductor device of this embodiment. The semiconductor device shown in Fig. 1B includes a substrate 1, an interlayer insulating film 2, a plug electrode 4, a resistive layer 5, a plug electrode 6, and a wiring 7, similar to the semiconductor device shown in Fig. 1A.

[0040] However, the plug electrode 4 shown in FIG. 1B is formed directly on the substrate 1 and is electrically connected to the substrate 1. The lower surface of this plug electrode 4 is in contact with the upper surface of the substrate 1. This plug electrode 4 is, for example, a contact plug. The resistive layer 5 shown in FIG. 1A is disposed between two wiring layers, whereas the resistive layer 5 shown in FIG. 1B is disposed between the substrate 1 and one wiring layer.

[0041] FIG. 2 is a cross-sectional view showing the structure of a semiconductor device as a comparative example of the first embodiment.

[0042] Fig. 2A shows a first example of the structure of the semiconductor device of this comparative example. The semiconductor device shown in Fig. 2A includes a substrate 1, an interlayer insulating film 2, a resistive layer 5, two plug electrodes 6a, 6b, and two wirings 7a, 7b.

[0043] While the plug electrodes 4 and 6 shown in A of Fig. 1 are in contact with different surfaces of the resistance layer 5, the plug electrodes 6a and 6b shown in A of Fig. 2 are in contact with the same surface of the resistance layer 5. Specifically, the plug electrodes 6a and 6b are both in contact with the upper surface of the resistance layer 5. Therefore, the plug electrodes 6a and 6b are in contact with the same wiring layer, and are in contact with different wirings 7a and 7b in this wiring layer, respectively. The plug electrodes 6a and 6b are, for example, via plugs.

[0044] Fig. 2B shows a second example of the structure of the semiconductor device of this comparative example. The semiconductor device shown in Fig. 2B includes a substrate 1, an interlayer insulating film 2, a resistive layer 5, two plug electrodes 6a, 6b, and two wirings 7a, 7b, as well as a plug electrode 6c, similar to the semiconductor device shown in Fig. 2A.

[0045] The plug electrode 6c is formed on the substrate 1 and below the wiring 7b, and electrically connects the substrate 1 and the wiring 7b. The plug electrode 6c is in contact with the upper surface of the substrate 1 and in contact with the lower surface of the wiring 7b. The plug electrode 6c is, for example, a contact plug.

[0046] FIG. 3 is a cross-sectional view for explaining a defect of a semiconductor device as a comparative example of the first embodiment.

[0047] Fig. 3A shows the electrical resistance R1 in the resistive layer 5 shown in Fig. 2A and the parasitic capacitance C1 between the plug electrodes 6a and 6b shown in Fig. 2A. Fig. 3B shows the connection relationship between the electrical resistance R1 and the parasitic capacitance C1 in a circuit diagram.

[0048] In this example, the plug electrodes 6a and 6b are in contact with the same surface of the resistive layer 5. Therefore, when the resistive layer 5 is miniaturized or made smaller, the distance between the plug electrodes 6a and 6b tends to become shorter. When the distance between the plug electrodes 6a and 6b becomes shorter, the parasitic capacitance C1 increases. The increase in the parasitic capacitance C1 is an obstacle to increasing the speed and reducing the power consumption of the semiconductor device.

[0049] Fig. 3C shows the electrical resistance R2 in the resistive layer 5 shown in Fig. 2B, the parasitic capacitance C2a between the plug electrodes 6a, 6b shown in Fig. 2B, and the parasitic capacitance C2b between the substrate 1 and the plug electrode 6c shown in Fig. 2B. Fig. 3D shows the connection relationship between the electrical resistance R2 and the parasitic capacitances C2a and C2b in a circuit diagram.

[0050] In this example, in addition to the parasitic capacitance C2a, a parasitic capacitance C2b occurs near the resistive layer 5. Therefore, when the resistive layer 5 is miniaturized or downsized, not only the parasitic capacitance C2a increases, but the parasitic capacitance C2b may also increase. The increase in the parasitic capacitances C2a and C2b is an obstacle to achieving high speed and low power consumption of a semiconductor device.

[0051] FIG. 4 is a cross-sectional view for explaining an advantage of the semiconductor device of the first embodiment.

[0052] FIG. 4A shows the electric resistance R3 in the resistive layer 5 shown in FIG. 1A, and the parasitic capacitance C3 between the plug electrodes 4 and 6 shown in FIG.

[0053] In this example, the plug electrodes 4 and 6 are in contact with different surfaces of the resistance layer 5. Therefore, even if the resistance layer 5 is miniaturized or reduced in size, the distance between the plug electrodes 4 and 6 is unlikely to become short. For example, the distance between the plug electrodes 4 and 6 shown in A of FIG. 4 is longer than the distance between the plug electrodes 6a and 6b shown in A of FIG. 3. Therefore, according to this embodiment, it is possible to reduce the parasitic capacitance C3, and it is possible to promote high speed operation and low power consumption of the semiconductor device.

[0054] FIG. 4B shows the electric resistance R4 in the resistive layer 5 shown in FIG. 1B, and the parasitic capacitance C4 between the plug electrodes 4 and 6 shown in FIG.

[0055] In this example as well, the plug electrodes 4 and 6 are in contact with different surfaces of the resistance layer 5. Therefore, even if the resistance layer 5 is miniaturized or reduced in size, the distance between the plug electrodes 4 and 6 is unlikely to become short. For example, the distance between the plug electrodes 4 and 6 shown in FIG. 4B is longer than the distance between the plug electrodes 6a and 6b shown in FIG. 3C. Therefore, according to this embodiment, it is possible to reduce the parasitic capacitance C4, and it is possible to promote high speed operation and low power consumption of the semiconductor device.

[0056] In this example, the plug electrode 6b, the wiring 7b, and the plug electrode 6c shown in FIG. 3C are replaced with the plug electrode 4 shown in FIG. 4B. Therefore, in this example, no parasitic capacitance corresponding to the parasitic capacitance C2b occurs near the resistance layer 5 shown in FIG. 4B. This also contributes to reducing the parasitic capacitance near the resistance layer 5. Therefore, according to the present embodiment, by adopting the structure of this example, it is possible to simplify the wiring structure near the resistance layer 5, and it is possible to reduce the chip area of ​​the semiconductor device and reduce the parasitic capacitance.

[0057] According to the verification, when the resistor width and resistor length of the resistor layer 5 are 0.2 μm and 2.0 μm, respectively, the parasitic capacitance in the case of B in FIG. 4 is reduced by about 60% compared to the case of C in FIG.

[0058] As described above, the plug electrodes 4 and 6 of this embodiment are disposed so as to contact different surfaces of the resistance layer 5. Therefore, according to this embodiment, the distance between the plug electrodes 4 and 6 can be increased, and the parasitic capacitance between the plug electrodes 4 and 6 can be reduced.

[0059] Second embodiment FIG. 5 is a cross-sectional view showing the structure of the semiconductor device according to the second embodiment.

[0060] 1A, the semiconductor device of this embodiment includes a substrate 1, an interlayer insulating film 2, an interconnect 3, a plug electrode 4, a resistive layer 5, a plug electrode 6, and an interconnect 7. The resistive layer 5 of this embodiment includes a high-resistive layer 5a which is an example of the first layer of the present disclosure, and a low-resistive layer 5b which is an example of the second layer of the present disclosure.

[0061] The high resistance layer 5a has a higher electrical resistivity than the low resistance layer 5b. The electrical resistivity of the high resistance layer 5a is, for example, 10 times or more that of the low resistance layer 5b, and preferably 100 to 10,000 times that of the low resistance layer 5b.

[0062] The high-resistance layer 5a is, for example, an oxide film, a nitride film, or an oxynitride film containing a metal element, similar to the resistance layer 5 of the first embodiment. Examples of the metal element are high-melting point metal elements such as Ta and Ti. The high-resistance layer 5a may further contain Si. Examples of such a high-resistance layer 5a are cermet layers such as a TaSiO layer and a TiSiO layer.

[0063] The low resistance layer 5b is, for example, a simple metal layer containing a metal element, an alloy layer, an oxide film, a nitride film, or an oxynitride film. An example of the metal element is a high melting point metal element. It is desirable that the low resistance layer 5b exhibits good conductivity with the high resistance layer 5a. An example of the low resistance layer 5b in this embodiment is an Al-Ni(B) alloy layer (Al, Ni, and B represent aluminum, nickel, and boron, respectively).

[0064] In FIG. 5, a low resistance layer 5b is formed on the plug electrode 4 and is electrically connected to the plug electrode 4. The lower surface of the low resistance layer 5b is in contact with the upper surface of the plug electrode 4. In FIG. 5, a high resistance layer 5a is further formed on the low resistance layer 5b and is electrically connected to the low resistance layer 5b. The lower surface of the high resistance layer 5a is in contact with the upper surface of the low resistance layer 5b. In FIG. 5, a plug electrode 6 is further formed on the high resistance layer 5a and is electrically connected to the high resistance layer 5a. The lower surface of the plug electrode 6 is in contact with the upper surface of the high resistance layer 5a.

[0065] The low-resistance layer 5b is divided into a first portion P1 provided on the plug electrode 4 side and a second portion P2 provided on the plug electrode 6 side. Thus, the low-resistance layer 5b includes two mutually separated portions, the first portion P1 and the second portion P2. In addition, the plug electrode 4 is disposed at a position overlapping the first portion P1 in the up-down direction (±Z direction). On the other hand, the plug electrode 6 is disposed at a position overlapping the second portion P2 in the up-down direction (±Z direction).

[0066] Therefore, when a current flows in the resistance layer 5, the current flows mainly in the low resistance layer 5b (first portion P1) rather than the high resistance layer 5a near the plug electrode 4, and also flows mainly in the low resistance layer 5b (second portion P2) rather than the high resistance layer 5a near the plug electrode 6. This is because a current tends to flow through a portion with low electrical resistance.

[0067] On the other hand, when a current flows between the first portion P1 and the second portion P2 in the resistance layer 5, the current flows through the high resistance layer 5a because the low resistance layer 5b is divided between the first portion P1 and the second portion P2.

[0068] As a result, the electrical resistance of the resistance layer 5 is mainly determined by the portion of the high resistance layer 5a sandwiched between the first portion P1 and the second portion P2. Therefore, according to this embodiment, it is possible to adjust the value of the electrical resistance of the resistance layer 5 to a desired value by adjusting the distance between the first portion P1 and the second portion P2, etc.

[0069] FIG. 6 is a cross-sectional view for explaining an advantage of the semiconductor device according to the second embodiment.

[0070] 6A shows various dimensions of the semiconductor device shown in FIG. 1A (first embodiment). FIG. 6A shows the resistance length "L1" of the resistance layer 5, the width "2b" of the plug electrode 4, the width "2c" of the plug electrode 6, and the distance "d" between the central axis of the plug electrode 4 and the central axis of the plug electrode 6. The resistance length L1 roughly corresponds to the shortest distance between the plug electrodes 4 and 6.

[0071] In FIG. 6A, the electrical resistance of the resistive layer 5 between the plug electrodes 4 and 6 is proportional to the resistive length L1. Therefore, if the value of the resistive length L1 varies when manufacturing a semiconductor device, the value of the electrical resistance of the resistive layer 5 will vary. On the other hand, the variation in the value of the resistive layer L1 depends on three parameters, b, c, and d. If these variation parameters are represented as Δb, Δc, and Δd, respectively, and they vary uncorrelated, the variation in the value of the resistive layer L1 will be expressed as follows: (Δb 2 +Δc 2 +Δd 2 ) 1 / 2 Therefore, in order to adjust the electrical resistance value of the resistive layer 5 in A of Fig. 6 with high precision, it is necessary to adjust the three dimensions b, c, and d with high precision, which makes it difficult to adjust the electrical resistance value of the resistive layer 5 with high precision.

[0072] Fig. 6B shows various dimensions of the semiconductor device shown in Fig. 5 (the present embodiment). Fig. 6B shows the resistance length "L2" of the resistance layer 5 and the width "a" of the gap between the first portion P1 and the second portion P2. The resistance length L2 corresponds to the shortest distance between the first and second portions P1 and P2.

[0073] In FIG. 6B, the electrical resistance of the resistive layer 5 between the plug electrodes 4 and 6 is determined mainly by the portion of the high resistance layer 5a sandwiched between the first portion P1 and the second portion P2, and is roughly proportional to the resistive length L2. Therefore, when manufacturing a semiconductor device, if the value of the resistive length L2 varies, the value of the electrical resistance of the resistive layer 5 varies. On the other hand, the variation in the value of the resistive layer L2 depends on one parameter, a. Therefore, in FIG. 6B, the value of the electrical resistance of the resistive layer 5 can be adjusted with high precision by adjusting one dimension, a, with high precision. Thus, according to this embodiment, the value of the electrical resistance of the resistive layer 5 can be adjusted with high precision by simple adjustment.

[0074] 7 and 8 are cross-sectional views showing the details of the structure of the semiconductor device according to the second embodiment.

[0075] Fig. 7A shows details of the semiconductor device shown in Fig. 5. As shown in Fig. 7A, plug electrode 4 includes a barrier metal layer 11 and a plug material layer 12 in this order, and plug electrode 6 includes a barrier metal layer 13 and a plug material layer 14 in this order.

[0076] The barrier metal layer 11 is exposed on the lower surface and side surfaces of the plug electrode 4 and is in contact with the wiring 3. The barrier metal layer 11 is a metal layer containing, for example, Ta or Ti. The plug material layer 12 is exposed on the upper surface of the plug electrode 4 and is in contact with the resistance layer 5 (low resistance layer 5b). The plug material layer 12 is a metal layer containing, for example, Al, W, or Cu.

[0077] The barrier metal layer 13 is exposed on the lower and side surfaces of the plug electrode 6 and is in contact with the resistance layer 5 (high resistance layer 5a). The barrier metal layer 13 is a metal layer containing, for example, Ta or Ti. The plug material layer 14 is exposed on the upper surface of the plug electrode 6 and is in contact with the wiring 7. The plug material layer 14 is a metal layer containing, for example, Al, W, or Cu.

[0078] Such a structure of the plug electrodes 4, 6 can also be applied to the plug electrodes 4, 6 shown in figures other than FIG.

[0079] Next, still referring to FIG. 7A, the relationship between the plug electrodes 4, 6 and the resistance layer 5 will be described.

[0080] 7A, a low-resistance layer 5b is formed on the plug material layer 12 of the plug electrode 4, and a high-resistance layer 5a is formed on the low-resistance layer 5b. Such a structure has the advantage that the plug material layer 12 can be prevented from being oxidized (or nitridized) when the high-resistance layer 5a is formed.

[0081] Here, it is assumed that the plug material layer 12 is a W layer, the low resistance layer 5b is an Al-Ni(B) layer, and the high resistance layer 5a is a TaSiO layer. In this case, if the high resistance layer 5a is directly formed on the plug material layer 12, the upper surface of the plug material layer 12 is oxidized when the high resistance layer 5a is formed. As a result, there is a possibility that the contact resistance between the plug electrode 4 and the resistance layer 5 increases or varies. However, if the high resistance layer 5a is formed on the plug material layer 12 via the low resistance layer 5b, the oxidation of the plug material layer 12 and the oxidation of the low resistance layer 5b are unlikely to occur. This is because the Al-Ni(B) layer does not contain oxygen, so it is unlikely to oxidize other layers, and further, the Al-Ni(B) layer itself has a property of being unlikely to be oxidized (oxidation resistance). Therefore, according to this embodiment, by forming the high resistance layer 5a on the plug material layer 12 via the low resistance layer 5b, it is possible to suppress the increase or variation of the contact resistance of the plug electrode 4.

[0082] 7A, the plug material layer 14 of the plug electrode 6 is formed on the high resistance layer 5a without the low resistance layer 5b. Therefore, at first glance, it may seem that the plug material layer 14 is oxidized for the above-mentioned reason. However, the plug material layer 14 is formed on the high resistance layer 5a with the barrier metal layer 13 interposed therebetween. Therefore, according to this embodiment, even if the plug material layer 14 is formed on the high resistance layer 5a without the low resistance layer 5b interposed therebetween, it is possible to suppress the increase and variation in the contact resistance of the plug electrode 6.

[0083] Such an effect can also be obtained when the plug material layer 12 is a layer other than a W layer, when the low resistance layer 5b is a layer other than an Al-Ni(B) layer, or when the high resistance layer 5a is a layer other than a TaSiO layer. For example, when the plug material layer 12 is a layer that is easily nitrided and the high resistance layer 5a is a layer containing nitrogen, the low resistance layer 5b may be a layer having nitridation resistance.

[0084] The semiconductor device of this embodiment may have a structure shown in Fig. 7B instead of the structure shown in Fig. 7A. In Fig. 7B, a high-resistance layer 5a is formed on the plug material layer 12 of the plug electrode 4, and a low-resistance layer 5b is formed on the high-resistance layer 5a. Such a structure is adopted, for example, when the plug material layer 12 is not easily oxidized (or nitrided) or when the oxidation (or nitridation) of the plug material layer 12 is not a problem.

[0085] The semiconductor device of this embodiment may have a structure shown in A and B of Figures 8. The structure of the plug electrode 4 shown in B of Figure 8 is the same as that of Figure 5. On the other hand, the plug electrode 6 shown in A of Figure 8 penetrates the high resistance layer 5a and contacts the low resistance layer 5b. Such a structure of the plug electrode 6 is realized, for example, for the following reason.

[0086] When manufacturing the semiconductor device shown in A of Fig. 8, for example, a high-resistance layer 5a is formed on a low-resistance layer 5b, a part of the interlayer insulating film 2 is formed on the high-resistance layer 5a, a via hole reaching the high-resistance layer 5a is formed in the interlayer insulating film 2, and a plug electrode 6 is formed in the via hole. In this case, if it is difficult to obtain an etching selectivity between the interlayer insulating film 2 and the high-resistance layer 5a, the via hole will penetrate the high-resistance layer 5a and reach the low-resistance layer 5b. When the plug electrode 6 is formed in such a via hole, the plug electrode 6 will penetrate the high-resistance layer 5a and contact the low-resistance layer 5b. Here, it is assumed that the interlayer insulating film 2 is a silicon oxide film, the low resistance layer 5b is an Al-Ni(B) layer, and the high resistance layer 5a is a TaSiO layer. In this case, since both the interlayer insulating film 2 and the high resistance layer 5a are oxide films, it is difficult to obtain an etching selectivity between the interlayer insulating film 2 and the high resistance layer 5a. Therefore, it is highly likely that the via hole will penetrate the high resistance layer 5a. On the other hand, since the low resistance layer 5b is an alloy layer that does not contain oxygen, it is easy to obtain an etching selectivity between the high resistance layer 5a and the low resistance layer 5b. Therefore, it is possible to form a via hole using the low resistance layer 5b as an etching stopper. As a result, it is possible to form a plug electrode 6 that penetrates the high resistance layer 5a and contacts the low resistance layer 5b by forming a plug electrode 6 in such a via hole.

[0087] In addition, when the structure shown in B of Figure 7 is adopted, a low resistance layer 5b is formed on the high resistance layer 5a, so that a structure can be realized in which the via hole reaches the low resistance layer 5b but does not reach the high resistance layer 5a.

[0088] 9 and 10 are cross-sectional views showing the structure of a semiconductor device according to a modification of the second embodiment.

[0089] 9A, the high resistance layer 5a is not formed near the plug electrode 6, and only the low resistance layer 5b is formed near the plug electrode 6. In FIG. 9B, the high resistance layer 5a is not formed near the plug electrode 4, and only the low resistance layer 5b is formed near the plug electrode 4.

[0090] 10A, the high resistance layer 5a is not formed near the plug electrodes 4 and 6, and only the low resistance layer 5b is formed near the plug electrodes 4 and 6. On the other hand, in FIG 10B, the high resistance layer 5a extends to the right side of the first portion P1 (i.e., the +X direction) and also extends to the left side of the second portion P2 (i.e., the -X direction).

[0091] The semiconductor device of this embodiment may have a structure shown in any one of A of Fig. 9 to B of Fig. 10. This makes it possible to form the resistance layer 5 including the high resistance layer 5a and the low resistance layer 5b while satisfying various layout constraints.

[0092] As described above, the resistance layer 5 of this embodiment includes the high resistance layer 5a and the low resistance layer 5b, and the low resistance layer 5b is divided into the first portion P1 and the second portion P2. Therefore, according to this embodiment, it is possible to adjust the value of the electrical resistance of the resistance layer 5 with high accuracy.

[0093] Third embodiment FIG. 11 is a cross-sectional view showing the structure of the semiconductor device according to the third embodiment.

[0094] 5, the semiconductor device of this embodiment includes a substrate 1, an interlayer insulating film 2, wiring 3 (not shown), a plug electrode 4 (not shown), a resistive layer 5, a plug electrode 6, and wiring 7. Similarly to the resistive layer 5 shown in FIG. 5, the resistive layer 5 of this embodiment includes a high resistive layer 5a and a low resistive layer 5b.

[0095] However, the low resistance layer 5b of this embodiment has a side surface having a tapered shape (inclined). Furthermore, the high resistance layer 5a of this embodiment is in contact with the upper surface of the low resistance layer 5b and the side surface of the tapered shape. Such a low resistance layer 5b can be formed, for example, by performing wet etching when etching the low resistance layer 5b.

[0096] FIG. 12 is a cross-sectional view for illustrating the structure of the semiconductor device according to the third embodiment.

[0097] Fig. 12A shows the resistance layer 5 of the second embodiment (Fig. 5). The high resistance layer 5a shown in Fig. 12A is in contact only with the upper surface of the low resistance layer 5b.

[0098] Fig. 12B shows a resistance layer 5 of a modification of the second embodiment (Fig. 5). The high resistance layer 5a shown in Fig. 12B has a step near the side of the low resistance layer 5b, and is in contact with the upper surface and side of the low resistance layer 5b. In this case, there is a problem that the high resistance layer 5a is likely to be discontinuous at the step of the high resistance layer 5a.

[0099] FIG. 12C shows the resistance layer 5 of this embodiment (FIG. 11). The high resistance layer 5a shown in FIG. 12C also has a step near the side of the low resistance layer 5b, and is in contact with the upper surface and side of the low resistance layer 5b. However, the side of the low resistance layer 5b has a tapered shape (slope). This makes it possible to suppress discontinuity of the high resistance layer 5a at the step of the high resistance layer 5a.

[0100] It is desirable to set the taper angle of the side surface of the low resistance layer 5b to, for example, 30° to 85° C. The taper angle is the angle of the side surface of the low resistance layer 5b with respect to the −Z direction.

[0101] (Fourth embodiment) FIG. 13 is a cross-sectional view showing the structure of the semiconductor device according to the fourth embodiment.

[0102] A of Fig. 13 shows a first example of a semiconductor device of the present embodiment. The semiconductor device shown in A of Fig. 13 includes, in addition to the components shown in Fig. 1, a plug electrode 21, a resistive layer 22, a plug electrode 23, and a wiring 24. The plug electrode 21 is an example of a third electrode of the present disclosure. The resistive layer 22 is an example of a second resistive layer of the present disclosure. The plug electrode 23 is an example of a fourth electrode of the present disclosure. The wiring 24 is an example of a third wiring of the present disclosure.

[0103] The plug electrode 21 is formed on the wiring 7 and is electrically connected to the wiring 7. The lower surface of the plug electrode 21 contacts the upper surface of the wiring 7. The plug electrode 21 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer. The plug electrode 21 is, for example, a via plug.

[0104] The resistive layer 22 is formed on the plug electrode 21 and is electrically connected to the plug electrode 21. The lower surface of the resistive layer 22 is in contact with the upper surface of the plug electrode 21. The resistive layer 22 is, for example, an oxide film, a nitride film, or an oxynitride film containing a metal element. An example of the metal element is a high-melting point metal element such as a Ta element or a Ti element. The resistive layer 22 may further contain a Si element. An example of such a resistive layer 22 is a cermet layer such as a TaSiO layer or a TiSiO layer.

[0105] The plug electrode 23 is formed on the resistance layer 22 and is electrically connected to the resistance layer 22. The lower surface of the plug electrode 23 is in contact with the upper surface of the resistance layer 22. The plug electrode 23 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer. The plug electrode 23 is, for example, a via plug.

[0106] The wiring 24 is provided in one wiring layer formed above the substrate 1, and is included in a wiring layer different from the wiring layer including the wiring 7. Thus, the resistance layer 22 is disposed between these wiring layers. The wiring 24 is formed on the plug electrode 23 and is electrically connected to the plug electrode 23. The lower surface of the wiring 24 is in contact with the upper surface of the plug electrode 23. The wiring 24 is, for example, a metal layer including an Al layer, a W layer, or a Cu layer.

[0107] According to this embodiment, it is possible to realize a multi-layered resistive layer by forming the resistive layer 5 and the resistive layer 22 above the substrate 1. These resistive layers 5 and 22 are connected in series via wiring 7 or the like. The resistive layers 5 and 22 may be connected in parallel via wiring 7 or the like.

[0108] Moreover, the plug electrodes 21 and 23 of this embodiment are disposed so as to contact different surfaces of the resistance layer 22. Therefore, according to this embodiment, it is possible to increase the distance between the plug electrodes 21 and 23, and to reduce the parasitic capacitance between the plug electrodes 22 and 23.

[0109] The resistance layer 22 of this embodiment may include a high resistance layer and a low resistance layer, similar to the resistance layer 5 of the second embodiment. In this case, the low resistance layer may have a tapered side surface, similar to the low resistance layer 5b of the third embodiment. Furthermore, the high resistance layer may be in contact with the upper surface of the low resistance layer and the tapered side surface, similar to the high resistance layer 5a of the third embodiment.

[0110] Fig. 13B shows a second example of the semiconductor device of this embodiment. The semiconductor device shown in Fig. 13B has the same components as the semiconductor device shown in Fig. 13A. However, plug electrode 23 is located in the +X direction instead of the -X direction of plug electrode 21, and is located almost directly above plug electrode 4. Similarly, plug electrode 21 is also located almost directly above plug electrode 6. This makes it possible to reduce the footprints of these components, and therefore the chip area of ​​the semiconductor device.

[0111] FIG. 14 is a cross-sectional view showing the structure of a semiconductor device according to a modification of the fourth embodiment.

[0112] A of Fig. 14 shows a first example of a semiconductor device of this modified example. This semiconductor device has a structure similar to that of the semiconductor device shown in A of Fig. 13. However, the plug electrode 6 and the wiring 7 in this example form a dual damascene wiring 25. The dual damascene wiring 25 is, for example, a metal layer including a Cu layer. Similarly, the plug electrode 23 and the wiring 24 in this example form a dual damascene wiring 26. The dual damascene wiring 26 is, for example, a metal layer including a Cu layer.

[0113] Fig. 14B shows a second example of the semiconductor device of this modified example. This semiconductor device has a similar structure to the semiconductor device shown in Fig. 13B. However, the plug electrode 6 and the wiring 7 in this example also form a dual damascene wiring 25. Similarly, the plug electrode 23 and the wiring 24 in this example also form a dual damascene wiring 26.

[0114] According to these examples, by forming plug electrode 6 and wiring 7 as dual damascene wiring 25, and by forming plug electrode 23 and wiring 24 as dual damascene wiring 26, it is possible to form these electrodes and wiring in a reduced number of processes.

[0115] Fifth embodiment 15 to 19 are cross-sectional views showing a method for manufacturing the semiconductor device of the fifth embodiment. According to this method, the semiconductor device of the second embodiment can be manufactured.

[0116] First, an interlayer insulating film 2a, which is a part of the interlayer insulating film 2, and a wiring layer including wiring 3 are formed on a substrate 1 (FIG. 15A). In the step shown in FIG. 15A, a lower portion of the interlayer insulating film 2a is formed on the substrate 1, wiring 3 is formed on the lower portion of the interlayer insulating film 2a, and an upper portion of the interlayer insulating film 2a is formed on the lower portion of the interlayer insulating film 2a so as to cover the wiring 3.

[0117] Next, a via hole H1 reaching the wiring 3 is formed in the interlayer insulating film 2a by photolithography and dry etching (FIG. 15B). Next, a material for the plug electrode 4 is formed on the entire surface of the substrate 1 by CVD (Chemical Vapor Deposition) (FIG. 15C). Next, the material outside the via hole H1 is removed by etch-back or CMP (Chemical Mechanical Polishing) (FIG. 16A). As a result, the plug electrode 4 is formed on the wiring 3 in the via hole H1. The lower surface of the plug electrode 4 is in contact with the upper surface of the wiring 3.

[0118] Next, a material for a low-resistance layer 5b is formed on the interlayer insulating film 2a and the plug electrode 4 by sputtering (FIG. 16B). Next, the shape of the material is processed by photolithography and dry etching (FIG. 16C). As a result, a low-resistance layer 5b including a first portion P1 and a second portion P2 that are separated from each other is formed. The second portion P2 is formed on the plug electrode 4. The lower surface of the second portion P2 is in contact with the upper surface of the plug electrode 4.

[0119] Next, an interlayer insulating film 2b, which is a part of the interlayer insulating film 2, is formed on the interlayer insulating film 2a and the low-resistance layer 5b, and the upper surface of the interlayer insulating film 2b is polished by CMP (FIG. 17A). As a result, the upper surface of the low-resistance layer 5b is exposed from the interlayer insulating film 2b.

[0120] Next, the material of the high resistance layer 5a is formed on the interlayer insulating film 2b and the low resistance layer 5b by sputtering (B in FIG. 17). Next, the shape of the material is processed by photolithography and dry etching (C in FIG. 17). As a result, the high resistance layer 5a is formed on the first and second portions P1 and P2 of the low resistance layer 5b. The lower surface of the high resistance layer 5a is in contact with the upper surface of the first portion P1 and the upper surface of the second portion P2. In this manner, the resistance layer 5 including the high resistance layer 5a and the low resistance layer 5b is formed.

[0121] Next, an interlayer insulating film 2c, which is a part of the interlayer insulating film 2, is formed on the interlayer insulating film 2b and the resistance layer 5 (FIG. 18A).

[0122] Next, a via hole H2 reaching the resistance layer 5 is formed in the interlayer insulating film 2c by photolithography and dry etching (B in FIG. 18). The via hole H2 is formed directly above the second portion P2. Next, a material for the plug electrode 6 is formed on the entire surface of the substrate 1 by CVD (C in FIG. 18). Next, the material outside the via hole H2 is removed by etch-back or CMP (A in FIG. 19). As a result, the plug electrode 6 is formed on the resistance layer 5 in the via hole H2. The lower surface of the plug electrode 6 is in contact with the upper surface of the resistance layer 5.

[0123] Next, a material for a wiring layer including the wiring 7 is formed on the interlayer insulating film 2c and the plug electrode 6 by sputtering (FIG. 18B). Next, the shape of the material is processed by photolithography and dry etching (FIG. 18C). As a result, a wiring layer including the wiring 7 is formed. The wiring 7 is formed on the plug electrode 6. The lower surface of the wiring 7 is in contact with the upper surface of the plug electrode 6.

[0124] Thereafter, various interlayer insulating films, resistive layers, plug electrodes, wiring (wiring layers), etc. are formed on the substrate 1. In this manner, the semiconductor device of the second embodiment is manufactured.

[0125] According to the method of this embodiment, it is also possible to manufacture the semiconductor device of the first embodiment, in which case the steps shown in Fig. 16B to Fig. 17A are omitted.

[0126] Moreover, according to the method of this embodiment, it is also possible to manufacture the semiconductor device of the third embodiment. In this case, the low resistance layer 5b is processed by wet etching in the step shown in FIG.

[0127] Moreover, according to the method of this embodiment, it is also possible to manufacture the semiconductor device of the fourth embodiment. In this case, after the step shown in C of Fig. 18, plug electrode 21, resistance layer 22, plug electrode 23, and wiring 24 are formed by the same methods as those for plug electrode 4, resistance layer 5, plug electrode 6, and wiring 7, respectively.

[0128] 20 and 21 are cross-sectional views showing a method for manufacturing a semiconductor device according to a modification of the fifth embodiment. According to this method, the plug electrode 6 and the wiring 7 can be formed as a dual damascene wiring 25.

[0129] A in Fig. 20 shows the same process as A in Fig. 18. In this method, first, the processes shown in A in Fig. 15 to A in Fig. 18 are carried out.

[0130] Next, a wiring groove H3 is formed in the interlayer insulating film 2c by photolithography and dry etching (FIG. 20B). Next, a via hole H2 reaching the resistance layer 5 is formed in the interlayer insulating film 2c below the wiring groove H3 by photolithography and dry etching (FIG. 20C). The via hole H2 is formed directly above the second portion P2.

[0131] Next, the material for the plug electrode 6 and the wiring 7 is formed on the entire surface of the substrate 1 by CVD (FIG. 21A). Next, the material outside the via hole H2 and the wiring trench H3 is removed by etch-back or CMP (FIG. 21B). As a result, the plug electrode 6 is formed on the resistance layer 5 in the via hole H2, and the wiring 7 is formed on the plug electrode 6 in the wiring trench H3. That is, the dual damascene wiring 25 is formed in the via hole H2 and the wiring trench H3. The lower surface of the dual damascene wiring 25 is in contact with the upper surface of the resistance layer 5.

[0132] The dual damascene wiring 26 can be formed in the same manner as the dual damascene wiring 25 .

[0133] As described above, according to the method of the present embodiment, it is possible to manufacture the semiconductor devices of the first to fourth embodiments.

[0134] Sixth embodiment 22 is a schematic diagram and a circuit diagram showing the configuration of a semiconductor device according to a sixth embodiment. The semiconductor device according to this embodiment is a solid-state imaging device having the structure of any one of the semiconductor devices according to the first to fourth embodiments.

[0135] As shown in A of Fig. 22, the semiconductor device (solid-state imaging device) of this embodiment includes a pixel array region 32 including a plurality of pixels 31 arranged in a two-dimensional array. Each of these pixels 31 has a circuit configuration shown in B of Fig. 22, for example.

[0136] FIG. 22B shows one pixel 31 included in the pixel array region 32. This pixel 31 has a first area U1 including a metal pad 9 described later, and a second area U2 including a metal pad 44 described later. The first area U1 and the second area U2 are electrically connected via these metal pads 9, 44. The semiconductor device of this embodiment is manufactured by bonding a first wafer and a second wafer. The first area U1 is a portion originating from the first wafer, and the second area U2 is a portion originating from the second wafer.

[0137] A pixel 31 shown in FIG. 22B includes a photoelectric conversion element (photoelectric conversion unit) PD, an electric resistance R, and a capacitor Ca in a first area U1, and includes a capacitor Cb, a transistor TR, and current sources Ia and Ib in a second area U2.

[0138] The photoelectric conversion element PD is, for example, a photodiode such as a SPAD (Single Photon Avalanche Diode), and converts incident light into an electric charge. A SPAD is known as a highly sensitive optical sensor element capable of detecting even a single photon. According to this embodiment, a highly sensitive optical sensor can be realized by using a SPAD as the photoelectric conversion element PD. The anode of the photoelectric conversion element PD is connected to a ground potential, and the cathode of the photoelectric conversion element PD is connected to an electric resistor R and a capacitor Ca. The photoelectric conversion element PD of this embodiment is provided in the aforementioned substrate 1, as described later.

[0139] The electric resistance R is realized by, for example, the above-mentioned resistive layer 5, and corresponds to the electric resistance R3 shown in A of Fig. 4 or the electric resistance R4 shown in B of Fig. 4. One end of the electric resistance R is connected to the photoelectric conversion element PD and the capacitor Ca, and the other end of the electric resistance R is connected to the metal pad 9. In addition, one electrode of the capacitor Ca is connected to the photoelectric conversion element PD and the electric resistance R, and the other electrode of the capacitor Ca is connected to the ground potential.

[0140] The electric resistance R may be realized by the above-mentioned resistive layer 5 and resistive layer 22. In this case, the value of the electric resistance R is a resistance value obtained by connecting the resistive layer 5 and the resistive layer 22 in series (or in parallel).

[0141] The transistor TR is, for example, a MOSFET, and has a gate terminal connected to the metal pad 44, the capacitor Cb, and the current source Ia, and a source terminal and a drain terminal disposed between the power supply potential and the current source Ib. The transistor TR of this embodiment, together with other circuit elements in the second area U2, constitutes a signal processing circuit that processes a voltage signal from the photoelectric conversion element PD. The electrical resistor R is disposed between the photoelectric conversion element PD and this signal processing circuit.

[0142] The current source Ia is disposed between the power supply potential and the metal pad 44. The current source Ib is disposed between the transistor TR and the ground potential. One electrode of the capacitor Cb is connected to the metal pad 44, the current source Ia, and the transistor TR, and the other electrode of the capacitor Cb is connected to the ground potential.

[0143] Here, the function of the electrical resistance R will be explained.

[0144] When a SPAD is used as the photoelectric conversion element PD, the amplitude of the voltage signal output from the photoelectric conversion element PD is, for example, 20 to 30 V. In this embodiment, this voltage signal is transmitted to the above-mentioned signal processing circuit via the electrical resistance R. This makes it possible to prevent a large-amplitude voltage signal from being supplied to the signal processing circuit.

[0145] In addition, since the electric resistance R in this embodiment is realized by the resistive layer 5, its parasitic capacitance is small. Therefore, even if a large amplitude voltage signal is generated in the photoelectric conversion element PD, the charge required for charging and discharging the parasitic capacitance is small. This makes it possible to realize low power consumption and high speed of each pixel 31.

[0146] The number of pixels 31 in the pixel array region 32 is, for example, 10,000 to 10 million. Therefore, if the power consumption of each pixel 31 can be reduced by P, it is possible to reduce the power consumption of the entire pixel array region 32 by a large amount, 10,000 to 10 million times P. Therefore, according to this embodiment, it is possible to significantly reduce the power consumption of the semiconductor device (solid-state imaging device).

[0147] FIG. 23 is a cross-sectional view showing the structure of the semiconductor device of the sixth embodiment.

[0148] 23 shows a cross section of one pixel 31 included in the semiconductor device of this embodiment. The semiconductor device of this embodiment is manufactured by bonding a first wafer including a first area U1 and a second wafer including a second area U2. At this time, the first wafer is bonded to the second wafer with the top and bottom surfaces of the first wafer reversed. Therefore, in FIG. 23, the plug electrode 4, the resistive layer 5, the plug electrode 6, and the like are located below the substrate 1. This will be described in detail later.

[0149] 23, the second area U2 includes a support substrate 41, an interlayer insulating film 42, plug electrodes 43, 43', and metal pads 44, 44'. The first area U1 includes, in addition to the above-mentioned substrate 1, interlayer insulating film 2, plug electrode 4, resistance layer 5 (high resistance layer 5a and low resistance layer 5b), plug electrode 6, and wiring 7, a plug electrode 6', wiring 7', plug electrodes 8, 8', metal pads 9, 9', an electrode 51, a pixel separator 52, a planarizing film 53, a color filter 54, and an on-chip lens 55.

[0150] The substrate 1 also includes, as impurity semiconductor regions, an N-type semiconductor region 1a, a P-type semiconductor region 1b, an N-type semiconductor region 1c, and a P-type semiconductor region 1d. The pixel isolation portion 52 also includes an element isolation insulating film 52a and a light shielding film 52b.

[0151] 23 further shows a surface S1 of the substrate 1, a back surface S2 of the substrate 1, a surface S3 of the support substrate 41, a back surface S4 of the support substrate 41, and a bonding surface of the first area U1 and the second area U2. The surface S1 of the substrate 1 is an example of a first surface of the present disclosure. The back surface S2 of the substrate 1 is an example of a second surface of the present disclosure. In FIG. 23, the surface S1 is the surface of the substrate 1 in the -Z direction, the back surface S2 is the surface of the substrate 1 in the +Z direction, the surface S3 is the surface of the support substrate 41 in the +Z direction, and the back surface S4 is the surface of the support substrate 41 in the -Z direction.

[0152] The N-type semiconductor region 1a, the P-type semiconductor region 1b, and the N-type semiconductor region 1c are formed in this order in the substrate 1 from the back surface S2 to the front surface S1 of the substrate 1. The P-type semiconductor region 1d is formed on the upper surface and side surface of the N-type semiconductor region 1a in the substrate 1 of FIG. 23. The photoelectric conversion unit PD of this embodiment is realized by a PN junction between these impurity semiconductor regions. The N-type semiconductor region 1a may be replaced with a P-type semiconductor region. The P-type semiconductor region 1b, the N-type semiconductor region 1c, and the P-type semiconductor region 1d function as a multiplication region, an anode electrode, and a hole accumulation layer of the photoelectric conversion unit PD, respectively. The photoelectric conversion unit PD shown in FIG. 23 is, for example, a SPAD.

[0153] The plug electrode 4, the resistive layer 5, the plug electrode 6, the wiring 7, the plug electrode 8, and the metal pad 9 are formed in this order on the surface S1 of the substrate 1 in the interlayer insulating film 2, and are electrically connected to the N-type semiconductor region 1c. The plug electrode 6', the wiring 7', the plug electrode 8', and the metal pad 9' are formed in this order on the surface S1 of the substrate 1 in the interlayer insulating film 2, and are electrically connected to the electrode 51 in the substrate 1. The metal pads 9, 9' are, for example, metal layers containing Cu (copper). The above-mentioned electrical resistance R is realized by the resistive layer 5, as shown in FIG.

[0154] The support substrate 41 is, for example, a semiconductor substrate such as a silicon substrate. The above-mentioned signal processing circuit and its transistor TR are formed on a surface S3 of the support substrate 41. The plug electrode 43 and the metal pad 44 are formed in this order on the surface S3 of the support substrate 41 in the interlayer insulating film 42, and are electrically connected to the support substrate 41. The plug electrode 43' and the metal pad 44' are formed in this order on the surface S3 of the support substrate 41 in the interlayer insulating film 42, and are electrically connected to the support substrate 41. The metal pads 44, 44' are, for example, metal layers containing Cu (copper).

[0155] The metal pad 44 is joined to the metal pad 9. Moreover, the metal pad 44' is joined to the metal pad 9'. As a result, the second area U2 is electrically connected to the first area U1.

[0156] The electrode 51 is formed in the substrate 1, and is located to the side of the N-type semiconductor region 1a and below the P-type semiconductor region 1d. The electrode 51 functions as a cathode electrode of the photoelectric conversion unit PD. The photoelectric conversion unit PD of this embodiment is a front-side cathode type SPAD having a cathode electrode (electrode 51) on the front surface S1 side of the substrate 1.

[0157] The pixel separating section 52 is formed in the substrate 1 between the pixel 31 shown in FIG. 23 and another pixel 31. The pixel separating section 52 of this embodiment penetrates the substrate 1 between the front surface S1 and the back surface S2 of the substrate 1. The pixel separating section 52 includes an element isolation insulating film 52a and a light shielding film 52b formed in this order in a groove formed in the substrate 1. The element isolation insulating film 52a is, for example, a silicon oxide film. The element isolation insulating film 52a may further include a fixed charge film (a film having a negative fixed charge). Examples of the fixed charge film are insulating films such as a high dielectric film and a high refractive index material film. The light shielding film 52b is a film formed of a material that blocks light, and is, for example, a metal film containing Al (aluminum), W (tungsten), or Cu (copper).

[0158] The planarization film 53 is formed on the substrate 1 and the pixel separating portion 52, thereby flattening the surface above the rear surface S2 of the substrate 1. The planarization film 53 is, for example, an organic film such as a resin film.

[0159] The color filters 54 are formed on the planarization film 53 for each pixel 31. For example, the color filters 54 for red (R), green (G), and blue (B) are disposed above the photoelectric conversion units PD of the red, green, and blue pixels 31, respectively. These color filters 54 may also include a color filter 54 for infrared light disposed above the photoelectric conversion unit PD of the infrared pixel 31. Each color filter 54 has a property of transmitting light of a predetermined wavelength, and the light transmitted through each color filter 54 enters the photoelectric conversion unit PD.

[0160] The on-chip lens 55 is formed on the color filter 54 for each pixel 31. The on-chip lens 55 has a property of collecting incident light, and the light collected by the on-chip lens 55 is incident on the photoelectric conversion unit PD via the color filter 54. In this manner, the semiconductor device of this embodiment is a back-illuminated solid-state imaging device.

[0161] When a certain pixel 31 is used for distance measurement, the color filter 54 does not need to be disposed above the photoelectric conversion unit PD of the pixel 31. In this pixel 31, an on-chip lens 55 is disposed above the photoelectric conversion unit PD without the color filter 54. An example of the distance measurement method in this case is the ToF (Time of Flight) method.

[0162] As described above, the semiconductor device of this embodiment is a solid-state imaging device including the first area U1 and the second area U2. The anode electrode (N-type semiconductor region 1c) of the photoelectric conversion unit PD is electrically connected to the signal processing circuit on the support substrate 41 via the resistive layer 5 (electrical resistance R) and the metal pads 9 and 44. On the other hand, the cathode electrode (electrode 51) of the photoelectric conversion unit PD is electrically connected to the ground potential via the metal pads 9' and 44' and the support substrate 41. The semiconductor device of this embodiment may further include an electric circuit other than the signal processing circuit on the support substrate 41. Examples of such electric circuits are a readout circuit and a drive circuit.

[0163] FIG. 24 is another cross-sectional view showing the structure of the semiconductor device according to the sixth embodiment.

[0164] Fig. 24 shows three pixels 31 among the multiple pixels 31 included in the semiconductor device of this embodiment. The structure of each pixel 31 is the same as the structure of the pixel 31 shown in Fig. 23. In Fig. 24, as described above, a pixel separator 52 is disposed between adjacent pixels 31. In addition, a color filter 54 and an on-chip lens 55 are disposed for each pixel 31.

[0165] 25 and 26 are cross-sectional views showing a method for manufacturing the semiconductor device of the sixth embodiment.

[0166] First, a first wafer W1 shown in A of FIG. 25 and a second wafer W2 shown in B of FIG. 25 are fabricated. The first wafer W1 includes the above-mentioned first area U1, specifically, the N-type semiconductor region 1a, the P-type semiconductor region 1b, the N-type semiconductor region 1c, the P-type semiconductor region 1d, the electrode 51, and the pixel separation portion 52 formed in the substrate 1, and the interlayer insulating film 2, the plug electrode 4, the resistive layer 5, the plug electrodes 6, 6', the wiring 7, 7', the plug electrodes 8, 8', and the metal pads 9, 9' formed on the surface S1 of the substrate 1. The second wafer W2 includes the above-mentioned second area U2, specifically, the interlayer insulating film 42, the plug electrodes 43, 43', and the metal pads 44, 44' formed on the surface S3 of the support substrate 41. The above-mentioned signal processing circuit is also formed on the support substrate 41 in the process shown in B of FIG. 25.

[0167] Next, the first wafer W1 is bonded to the second wafer W2 (A in FIG. 26). As a result, the metal pads 9, 9' are bonded to the metal pads 44, 44', respectively, and the second area U2 is electrically connected to the first area U1. In addition, the interlayer insulating film 2 is bonded to the interlayer insulating film 42.

[0168] Next, a planarization film 53 is formed on the rear surface S2 of the substrate 1, and a color filter 54 and an on-chip lens 55 are formed in this order for each pixel 31 on the planarization film 53 (FIG. 26B).

[0169] Thereafter, the first and second wafers W1 and W2 are divided into individual chips by dicing, thus completing the manufacture of the semiconductor device of the present embodiment.

[0170] 27 and 28 are cross-sectional views showing the structure of a semiconductor device according to a modification of the sixth embodiment.

[0171] The semiconductor device shown in FIG. 27 includes wiring 56 in addition to the components shown in FIG. 23. The cathode electrode (electrode 51) shown in FIG. 27 is disposed in the substrate 1 near the rear surface S2 of the substrate 1. Therefore, the photoelectric conversion unit PD shown in FIG. 27 is a rear cathode type SPAD having a cathode electrode (electrode 51) on the rear surface S2 side of the substrate 1. The wiring 56 is formed in the planarization film 53, and electrically connects the electrode 51 to a ground potential. It should be noted that the semiconductor device shown in FIG. 27 does not include a plug electrode 6', a wiring 7', a plug electrode 8', a metal pad 9', a plug electrode 43', and a metal pad 44'.

[0172] The semiconductor device shown in FIG. 28 includes an insulating film 57 and a plug electrode 58 in addition to the components shown in FIG. 23. The cathode electrode (electrode 51) shown in FIG. 28 is embedded in a hole formed in the substrate 1 from the surface S1 of the substrate 1. Therefore, the photoelectric conversion unit PD shown in FIG. 28 is a buried cathode type SPAD having the cathode electrode (electrode 51) in the hole of the substrate 1. The insulating film 57 and the plug electrode 58 are formed in this order in the hole, and the plug electrode 6' is electrically connected to the electrode 51 via the plug electrode 58. On the other hand, the plug electrode 6' is electrically connected to the ground potential via the support substrate 41 as described above.

[0173] As described above, according to this embodiment, the semiconductor device according to the first to fourth embodiments can be applied to a solid-state imaging device. The semiconductor device according to the first to fourth embodiments may be applied to devices other than a solid-state imaging device. Examples of such devices include analog circuit devices and high-frequency circuit devices.

[0174] (Application example) 29 is a block diagram showing an example of the configuration of an electronic device. The electronic device shown in FIG.

[0175] Camera 100 includes optical section 101 including a lens group and the like, imaging device 102 which is a solid-state imaging device of the sixth embodiment, DSP (Digital Signal Processor) circuit 103 which is a camera signal processing circuit, frame memory 104, display section 105, recording section 106, operation section 107, and power supply section 108. DSP circuit 103, frame memory 104, display section 105, recording section 106, operation section 107, and power supply section 108 are connected to each other via bus line 109.

[0176] The optical unit 101 takes in incident light (image light) from a subject and forms an image on an imaging surface of the imaging device 102. The imaging device 102 converts the amount of incident light imaged on the imaging surface by the optical unit 101 into an electrical signal on a pixel-by-pixel basis and outputs the electrical signal.

[0177] The DSP circuit 103 performs signal processing on the pixel signals output by the imaging device 102. The frame memory 104 is a memory for storing one screen of a moving image or a still image captured by the imaging device 102.

[0178] The display unit 105 includes a panel-type display device such as a liquid crystal panel or an organic EL panel, and displays moving images or still images captured by the imaging device 102. The recording unit 106 records the moving images or still images captured by the imaging device 102 in a recording medium such as a hard disk or a semiconductor memory.

[0179] An operation unit 107, under the operation of a user, issues operation commands for various functions of the camera 100. A power supply unit 108 appropriately supplies various types of power to the DSP circuit 103, frame memory 104, display unit 105, recording unit 106, and operation unit 107 as operating power sources to these devices.

[0180] By using the solid-state imaging device of the sixth embodiment as the imaging device 102, it is expected that a good image can be obtained.

[0181] The solid-state imaging device can be applied to various other products. For example, the solid-state imaging device may be mounted on various moving objects such as automobiles, electric vehicles, hybrid electric vehicles, motorcycles, bicycles, personal mobility vehicles, airplanes, drones, ships, and robots.

[0182] 30 is a block diagram showing a configuration example of a moving object control system, which is a vehicle control system 200.

[0183] The vehicle control system 200 includes a plurality of electronic control units connected via a communication network 201. In the example shown in Fig. 30, the vehicle control system 200 includes a drive system control unit 210, a body system control unit 220, an outside-vehicle information detection unit 230, an inside-vehicle information detection unit 240, and an integrated control unit 250. Fig. 30 further illustrates, as components of the integrated control unit 250, a microcomputer 251, an audio / video output unit 252, and an in-vehicle network I / F (Interface) 253.

[0184] The drivetrain control unit 210 controls the operation of devices related to the drivetrain of the vehicle according to various programs. For example, the drivetrain control unit 210 functions as a control device for a drive force generating device for generating a drive force of the vehicle, such as an internal combustion engine or a drive motor, a drive force transmission mechanism for transmitting the drive force to the wheels, a steering mechanism for adjusting the steering angle of the vehicle, a braking device for generating a braking force of the vehicle, etc.

[0185] The body system control unit 220 controls the operation of various devices equipped on the vehicle body according to various programs. For example, the body system control unit 220 functions as a control device for a smart key system, a keyless entry system, a power window device, various lamps (e.g., head lamps, back lamps, brake lamps, blinkers, fog lamps), etc. In this case, radio waves transmitted from a portable device that substitutes for a key or signals from various switches may be input to the body system control unit 220. The body system control unit 220 receives input of such radio waves or signals and controls the door lock device, power window device, lamps, etc. of the vehicle.

[0186] The outside-vehicle information detection unit 230 detects information outside the vehicle equipped with the vehicle control system 200. For example, an imaging unit 231 is connected to the outside-vehicle information detection unit 230. The outside-vehicle information detection unit 230 causes the imaging unit 231 to capture an image outside the vehicle, and receives the captured image from the imaging unit 231. The outside-vehicle information detection unit 230 may perform object detection processing or distance detection processing for people, cars, obstacles, signs, characters on the road surface, etc., based on the received image.

[0187] The imaging unit 231 is an optical sensor that receives light and outputs an electrical signal according to the amount of the received light. The imaging unit 231 can output the electrical signal as an image, and can also output it as distance measurement information. The light received by the imaging unit 231 may be visible light, or may be invisible light such as infrared light. The imaging unit 231 includes a solid-state imaging device of the sixth embodiment.

[0188] The in-vehicle information detection unit 240 detects information about the inside of the vehicle equipped with the vehicle control system 200. For example, a driver state detection unit 241 that detects the state of the driver is connected to the in-vehicle information detection unit 240. For example, the driver state detection unit 241 includes a camera that captures an image of the driver, and the in-vehicle information detection unit 240 may calculate the degree of fatigue or concentration of the driver based on the detection information input from the driver state detection unit 241, or may determine whether the driver is dozing. This camera may include the solid-state imaging device of the sixth embodiment, and may be, for example, the camera 100 shown in FIG. 29.

[0189] The microcomputer 251 can calculate control target values ​​for the driving force generating device, steering mechanism, or braking device based on the information inside and outside the vehicle acquired by the outside-of-vehicle information detection unit 230 or the inside-vehicle information detection unit 240, and output a control command to the drive system control unit 210. For example, the microcomputer 251 can perform cooperative control aimed at realizing functions of an ADAS (Advanced Driver Assistance System), such as vehicle collision avoidance, impact mitigation, following driving based on the inter-vehicle distance, vehicle speed maintenance driving, collision warning, lane departure warning, etc.

[0190] In addition, the microcomputer 251 can perform cooperative control for the purpose of automatic driving, in which the vehicle travels autonomously without being operated by the driver, by controlling the driving force generating device, the steering mechanism, or the braking device based on information about the surroundings of the vehicle acquired by the outside vehicle information detection unit 230 or the inside vehicle information detection unit 240.

[0191] Furthermore, the microcomputer 251 can output a control command to the body system control unit 220 based on the information outside the vehicle acquired by the vehicle exterior information detection unit 230. For example, the microcomputer 251 can control the headlamps according to the position of a preceding vehicle or an oncoming vehicle detected by the vehicle exterior information detection unit 230, and perform cooperative control for the purpose of preventing glare, such as switching from high beams to low beams.

[0192] The audio / image output unit 252 transmits at least one of audio and image output signals to an output device capable of visually or audibly notifying the passengers of the vehicle or the outside of the vehicle of information. In the example of Fig. 30, an audio speaker 261, a display unit 262, and an instrument panel 263 are shown as such output devices. The display unit 262 may include, for example, an on-board display or a head-up display.

[0193] FIG. 31 is a plan view showing a specific example of the setting position of the imaging unit 231 in FIG.

[0194] 31 includes imaging units 301, 302, 303, 304, and 305 as the imaging unit 231. The imaging units 301, 302, 303, 304, and 305 are provided at positions such as the front nose, side mirrors, rear bumper, back door, and the top of the windshield inside the vehicle cabin of the vehicle 300.

[0195] The imaging unit 301 provided on the front nose mainly acquires images of the front of the vehicle 300. The imaging unit 302 provided on the left side mirror and the imaging unit 303 provided on the right side mirror mainly acquire images of the sides of the vehicle 300. The imaging unit 304 provided on the rear bumper or the back door mainly acquires images of the rear of the vehicle 300. The imaging unit 305 provided on the upper part of the windshield inside the vehicle cabin mainly acquires images of the front of the vehicle 300. The imaging unit 305 is used to detect, for example, a leading vehicle, a pedestrian, an obstacle, a traffic light, a traffic sign, a lane, and the like.

[0196] FIG. 31 shows an example of the imaging ranges of the imaging units 301, 302, 303, and 304 (hereinafter referred to as "imaging units 301 to 304"). Imaging range 311 shows the imaging range of the imaging unit 301 provided on the front nose. Imaging range 312 shows the imaging range of the imaging unit 302 provided on the left side mirror. Imaging range 313 shows the imaging range of the imaging unit 303 provided on the right side mirror. Imaging range 314 shows the imaging range of the imaging unit 304 provided on the rear bumper or the back door. For example, the image data captured by the imaging units 301 to 304 are superimposed to obtain an overhead image of the vehicle 300 viewed from above. Hereinafter, the imaging ranges 311, 312, 313, and 314 are referred to as "imaging ranges 311 to 314".

[0197] At least one of the imaging units 301 to 304 may have a function of acquiring distance information. For example, at least one of the imaging units 301 to 304 may be a stereo camera including a plurality of imaging devices, or may be an imaging device having pixels for detecting a phase difference.

[0198] For example, the microcomputer 251 (FIG. 30) calculates the distance to each solid object in the imaging range 311-314 and the change in this distance over time (relative speed with respect to the vehicle 300) based on the distance information obtained from the imaging units 301-304. Based on these calculation results, the microcomputer 251 can extract, as a preceding vehicle, a solid object that is the closest solid object on the traveling path of the vehicle 300 and travels in approximately the same direction as the vehicle 300 at a predetermined speed (for example, 0 km / h or more). Furthermore, the microcomputer 251 can set a vehicle distance to be secured in advance in front of the preceding vehicle, and perform automatic brake control (including follow-up stop control) and automatic acceleration control (including follow-up start control). In this way, according to this example, cooperative control can be performed for the purpose of automatic driving that travels autonomously without the driver's operation.

[0199] For example, the microcomputer 251 classifies and extracts three-dimensional object data on three-dimensional objects into two-wheeled vehicles, ordinary vehicles, large vehicles, pedestrians, utility poles, and other three-dimensional objects based on the distance information obtained from the imaging units 301 to 304, and can use the data for automatic obstacle avoidance. For example, the microcomputer 251 distinguishes obstacles around the vehicle 300 into obstacles that are visible to the driver of the vehicle 300 and obstacles that are difficult to see. Then, the microcomputer 251 determines a collision risk indicating the risk of collision with each obstacle, and when the collision risk is equal to or greater than a set value and there is a possibility of a collision, the microcomputer 251 can provide driving assistance for collision avoidance by outputting an alarm to the driver via the audio speaker 261 or the display unit 262, or by performing forced deceleration or avoidance steering via the drive system control unit 210.

[0200] At least one of the imaging units 301 to 304 may be an infrared camera that detects infrared rays. For example, the microcomputer 251 can recognize a pedestrian by determining whether or not a pedestrian is present in the captured images of the imaging units 301 to 304. The recognition of such a pedestrian is performed, for example, by a procedure of extracting feature points in the captured images of the imaging units 301 to 304 as infrared cameras and a procedure of performing a pattern matching process on a series of feature points that indicate the contour of an object to determine whether or not the object is a pedestrian. When the microcomputer 251 determines that a pedestrian is present in the captured images of the imaging units 301 to 304 and recognizes the pedestrian, the audio / image output unit 252 controls the display unit 262 to superimpose a rectangular contour line for emphasis on the recognized pedestrian. The audio / image output unit 252 may also control the display unit 262 to display an icon or the like indicating a pedestrian at a desired position.

[0201] FIG. 32 is a diagram showing an example of a schematic configuration of an endoscopic surgery system to which the technology according to the present disclosure (the present technology) can be applied.

[0202] 32 shows a state in which an operator (doctor) 531 is performing surgery on a patient 532 on a patient bed 533 using an endoscopic surgery system 400. As shown in the figure, the endoscopic surgery system 400 is composed of an endoscope 500, other surgical tools 510 such as an insufflation tube 511 and an energy treatment tool 512, a support arm device 520 that supports the endoscope 500, and a cart 600 on which various devices for endoscopic surgery are mounted.

[0203] The endoscope 500 is composed of a lens barrel 501, a region of a predetermined length from the tip of which is inserted into a body cavity of a patient 532, and a camera head 502 connected to the base end of the lens barrel 501. In the illustrated example, the endoscope 500 is configured as a so-called rigid lens barrel having a rigid lens barrel 501, but the endoscope 500 may be configured as a so-called flexible lens barrel having a flexible lens barrel.

[0204] An opening into which an objective lens is fitted is provided at the tip of the lens barrel 501. A light source device 603 is connected to the endoscope 500, and light generated by the light source device 603 is guided to the tip of the lens barrel by a light guide extending inside the lens barrel 501, and is irradiated via the objective lens toward an observation target in a body cavity of a patient 532. The endoscope 500 may be a direct-viewing endoscope, an oblique-viewing endoscope, or a side-viewing endoscope.

[0205] An optical system and an image sensor are provided inside the camera head 502, and reflected light (observation light) from an observation target is collected on the image sensor by the optical system. The observation light is photoelectrically converted by the image sensor to generate an electrical signal corresponding to the observation light, i.e., an image signal corresponding to an observation image. The image signal is transmitted to a camera control unit (CCU) 601 as RAW data.

[0206] The CCU 601 is configured with a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), etc., and comprehensively controls the operations of the endoscope 500 and the display device 602. Furthermore, the CCU 601 receives an image signal from the camera head 502, and performs various types of image processing on the image signal, such as development processing (demosaic processing), for displaying an image based on the image signal.

[0207] Under the control of the CCU 601 , the display device 602 displays an image based on an image signal that has been subjected to image processing by the CCU 601 .

[0208] The light source device 603 is composed of a light source such as an LED (Light Emitting Diode), and supplies the endoscope 500 with irradiation light when photographing an operation site or the like.

[0209] The input device 604 is an input interface for the endoscopic surgery system 11000. A user can input various information and instructions to the endoscopic surgery system 400 via the input device 604. For example, the user inputs an instruction to change the imaging conditions (type of irradiated light, magnification, focal length, etc.) of the endoscope 500.

[0210] The treatment tool control device 605 controls the driving of the energy treatment tool 512 for cauterizing tissue, incising, sealing blood vessels, etc. The insufflation device 606 feeds gas into the body cavity of the patient 532 via the insufflation tube 511 in order to secure the field of view of the endoscope 500 and the working space of the surgeon. The recorder 607 is a device capable of recording various information related to the surgery. The printer 608 is a device capable of printing various information related to the surgery in various formats such as text, image, or graph.

[0211] The light source device 603 that supplies irradiation light to the endoscope 500 when photographing the surgical site can be composed of a white light source composed of, for example, an LED, a laser light source, or a combination of these. When the white light source is composed of a combination of RGB laser light sources, the output intensity and output timing of each color (each wavelength) can be controlled with high precision, so that the white balance of the captured image can be adjusted in the light source device 603. In this case, it is also possible to capture images corresponding to each of the RGB colors in a time-division manner by irradiating the observation target with laser light from each of the RGB laser light sources in a time-division manner and controlling the driving of the image sensor of the camera head 502 in synchronization with the irradiation timing. According to this method, a color image can be obtained without providing a color filter to the image sensor.

[0212] Furthermore, the light source device 603 may be controlled to change the intensity of the light it outputs at predetermined time intervals. By controlling the driving of the image sensor of the camera head 502 in synchronization with the timing of the change in the light intensity to obtain images in a time-division manner and synthesizing the images, it is possible to generate an image with a high dynamic range that is free of so-called blocked-up shadows and blown-out highlights.

[0213] The light source device 603 may be configured to supply light of a predetermined wavelength band corresponding to the special light observation. In the special light observation, for example, by utilizing the wavelength dependency of light absorption in body tissue, a narrow band light is irradiated compared to the irradiated light (i.e., white light) during normal observation, and a predetermined tissue such as blood vessels on the mucous membrane surface is photographed with high contrast, so-called narrow band imaging is performed. Alternatively, the special light observation may be a fluorescent observation in which an image is obtained by fluorescence generated by irradiating excitation light. In the fluorescent observation, excitation light is irradiated to the body tissue and the fluorescence from the body tissue is observed (autofluorescence observation), or a reagent such as indocyanine green (ICG) is locally injected into the body tissue and excitation light corresponding to the fluorescent wavelength of the reagent is irradiated to the body tissue to obtain a fluorescent image. The light source device 603 may be configured to supply narrow band light and / or excitation light corresponding to such special light observation.

[0214] FIG. 33 is a block diagram showing an example of a functional configuration of the camera head 502 and the CCU 601 shown in FIG.

[0215] The camera head 502 has a lens unit 701, an imaging section 702, a drive section 703, a communication section 704, and a camera head control section 705. The CCU 601 has a communication section 711, an image processing section 712, and a control section 713. The camera head 502 and the CCU 601 are connected to each other by a transmission cable 700 so as to be able to communicate with each other.

[0216] Lens unit 701 is an optical system provided at a connection portion with lens barrel 501. Observation light taken in from the tip of lens barrel 501 is guided to camera head 502 and enters lens unit 701. Lens unit 701 is configured by combining multiple lenses including a zoom lens and a focus lens.

[0217] The imaging unit 702 is composed of an imaging element. The imaging element constituting the imaging unit 702 may be one (so-called single-plate type) or multiple (so-called multi-plate type). When the imaging unit 702 is composed of a multi-plate type, for example, each imaging element may generate an image signal corresponding to each of RGB, and a color image may be obtained by combining the image signals. Alternatively, the imaging unit 702 may be configured to have a pair of imaging elements for acquiring image signals for the right eye and the left eye corresponding to 3D (Dimensional) display. By performing 3D display, the surgeon 531 can more accurately grasp the depth of the biological tissue in the surgical site. Note that when the imaging unit 702 is composed of a multi-plate type, the lens unit 701 may also be provided in multiple systems corresponding to each imaging element. The imaging unit 702 is, for example, the solid-state imaging device of the sixth embodiment.

[0218] Furthermore, the imaging section 702 does not necessarily have to be provided in the camera head 502. For example, the imaging section 702 may be provided inside the lens barrel 501, immediately behind the objective lens.

[0219] The driving section 703 is configured by an actuator, and moves the zoom lens and focus lens of the lens unit 701 by a predetermined distance along the optical axis under the control of the camera head control section 705. This allows the magnification and focus of the image captured by the imaging section 702 to be appropriately adjusted.

[0220] The communication unit 704 is configured by a communication device for transmitting and receiving various information to and from the CCU 601. The communication unit 704 transmits the image signal obtained from the imaging unit 702 to the CCU 601 via the transmission cable 700 as RAW data.

[0221] Furthermore, the communication unit 704 receives a control signal for controlling the driving of the camera head 502 from the CCU 601, and supplies the control signal to the camera head control unit 705. The control signal includes information on the imaging conditions, such as information specifying the frame rate of the captured image, information specifying the exposure value at the time of capturing the image, and / or information specifying the magnification and focus of the captured image.

[0222] The image capturing conditions such as the frame rate, exposure value, magnification, and focus may be appropriately specified by a user, or may be automatically set by the control unit 713 of the CCU 601 based on an acquired image signal. In the latter case, the endoscope 500 is equipped with a so-called AE (Auto Exposure) function, AF (Auto Focus) function, and AWB (Auto White Balance) function.

[0223] The camera head control unit 705 controls the driving of the camera head 502 based on a control signal received from the CCU 601 via the communication unit 704 .

[0224] The communication unit 711 is configured with a communication device for transmitting and receiving various information to and from the camera head 502. The communication unit 711 receives an image signal transmitted from the camera head 502 via the transmission cable 700.

[0225] Furthermore, the communication unit 711 transmits, to the camera head 502, a control signal for controlling the driving of the camera head 502. The image signal and the control signal can be transmitted by electrical communication, optical communication, or the like.

[0226] The image processing unit 712 performs various types of image processing on the image signal, which is RAW data sent from the camera head 502 .

[0227] The control unit 713 performs various controls related to the imaging of the operation site etc. by the endoscope 500 and the display of the captured image obtained by imaging the operation site etc. For example, the control unit 713 generates a control signal for controlling the driving of the camera head 502.

[0228] Further, the control unit 713 causes the display device 602 to display the captured image showing the surgical site, etc., based on the image signal that has been image-processed by the image processing unit 712. At this time, the control unit 713 may recognize various objects in the captured image using various image recognition techniques. For example, the control unit 713 can recognize surgical tools such as forceps, specific living body parts, bleeding, mist generated when the energy treatment tool 512 is used, etc., by detecting the shape and color of the edge of an object included in the captured image. When the control unit 713 causes the display device 602 to display the captured image, it may use the recognition result to superimpose various types of surgery support information on the image of the surgical site. By superimposing and presenting the surgery support information to the surgeon 531, the burden on the surgeon 531 can be reduced and the surgeon 531 can proceed with the surgery reliably.

[0229] The transmission cable 700 connecting the camera head 502 and the CCU 601 is an electrical signal cable corresponding to communication of electrical signals, an optical fiber corresponding to optical communication, or a composite cable of these.

[0230] Here, in the illustrated example, the communication is performed by wire using the transmission cable 700, but the communication between the camera head 502 and the CCU 601 may be performed wirelessly.

[0231] Although the embodiments of the present disclosure have been described above, these embodiments may be implemented with various modifications without departing from the scope of the present disclosure. For example, two or more embodiments may be implemented in combination.

[0232] The present disclosure may also be configured as follows.

[0233] (1) A substrate; a first resistive layer disposed on the substrate; a first electrode in contact with a lower surface of the first resistance layer; a second electrode in contact with an upper surface of the first resistive layer; A semiconductor device comprising:

[0234] (2) a first wiring in contact with a lower surface of the first electrode; a second wiring in contact with an upper surface of the second electrode; The semiconductor device according to (1), further comprising:

[0235] (3) The semiconductor device according to (1), wherein the first electrode is in contact with an upper surface of the substrate.

[0236] (4) the first resistive layer includes a first layer and a second layer having an electrical resistivity lower than an electrical resistivity of the first layer; the second layer includes a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion; The semiconductor device according to (1).

[0237] (5) the first electrode is disposed at a position overlapping the first portion in a vertical direction, The second electrode is disposed at a position overlapping with the second portion in the vertical direction. The semiconductor device according to (4).

[0238] (6) The semiconductor device according to (4), wherein the first layer contains a metal element and a silicon element.

[0239] (7) The semiconductor device according to (4), wherein the second layer is provided on a lower surface of the first layer.

[0240] (8) The semiconductor device according to (4), wherein the second layer is provided on an upper surface of the first layer.

[0241] (9) The semiconductor device according to (7), wherein the second electrode penetrates the first layer.

[0242] (10) The semiconductor device according to (7), wherein the second electrode is in contact with the second layer.

[0243] (11) the second layer has a tapered side surface; The first layer is in contact with an upper surface and a side surface of the tapered shape of the second layer. The semiconductor device according to (7).

[0244] (12) a second resistive layer disposed on the substrate; a third electrode in contact with a lower surface of the second resistance layer and electrically connected to the second electrode; a fourth electrode in contact with an upper surface of the second resistive layer; The semiconductor device according to (1), further comprising:

[0245] (13) a first wiring in contact with a lower surface of the first electrode; a second wiring in contact with an upper surface of the second electrode and a lower surface of the third electrode; a third wiring in contact with an upper surface of the fourth electrode; The semiconductor device according to (12) further comprising:

[0246] (14) The semiconductor device according to (13), wherein at least one of the second electrode and the second wiring, and the third electrode and the third wiring form a dual damascene wiring.

[0247] (15) The semiconductor device according to (1), wherein the first resistive layer is provided between a photoelectric conversion element and a signal processing circuit.

[0248] (16) The semiconductor device according to claim 15, wherein the photoelectric conversion element is provided within the substrate.

[0249] (17) The semiconductor device according to (15), wherein the photoelectric conversion element is a SPAD (Single Photon Avalanche Diode).

[0250] (18) The substrate is a first surface on which the first resistive layer, the first electrode, and the second electrode are provided; a second surface provided with a lens that allows light to be incident on the photoelectric conversion element; The semiconductor device according to (15) above,

[0251] (19) forming a first electrode on a substrate; forming a first resistive layer in contact with an upper surface of the first electrode; forming a second electrode in contact with an upper surface of the first resistance layer; A method for manufacturing a semiconductor device comprising the steps of:

[0252] (20) The first resistance layer is formed to include a first layer and a second layer having an electrical resistivity lower than an electrical resistivity of the first layer, the second layer is formed to include a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion; A method for manufacturing a semiconductor device according to (19). [Explanation of symbols]

[0253] 1: substrate, 1a: N-type semiconductor region, 1b: P-type semiconductor region, 1c: N-type semiconductor region, 1d: P-type semiconductor region, 2, 2a, 2b, 2c: interlayer insulating film, 3: wiring, 4: plug electrode, 5: resistive layer, 5a: high resistance layer, 5b: low resistance layer, 6, 6a, 6b, 6c, 6': plug electrodes, 7, 7a, 7b, 7': wiring, 8, 8': plug electrode, 9, 9': metal pad, 11: barrier metal layer; 12: plug material layer; 13: barrier metal layer; 14: plug material layer; 21: plug electrode, 22: resistive layer, 23: plug electrode, 24: wiring, 25: Dual damascene wiring, 26: Dual damascene wiring, 31: pixel; 32: pixel array area; 41: supporting substrate, 42: interlayer insulating film, 43, 43': plug electrodes, 44, 44': metal pads, 51: electrode; 52: pixel isolation portion; 52a: element isolation insulating film; 52b: light shielding film; 53: planarization film, 54: color filter, 55: on-chip lens, 56: wiring, 57: insulating film, 58: plug electrode

Claims

1. A substrate; a first resistive layer disposed on the substrate; a first electrode in contact with a lower surface of the first resistive layer; a second electrode in contact with an upper surface of the first resistive layer; Equipped with the first resistive layer includes a first layer and a second layer having an electrical resistivity lower than an electrical resistivity of the first layer; the second layer includes a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion, Semiconductor device.

2. a first wiring in contact with a lower surface of the first electrode; a second wiring in contact with an upper surface of the second electrode; The semiconductor device according to claim 1 , further comprising:

3. The semiconductor device according to claim 1 , wherein the first electrode is in contact with an upper surface of the substrate.

4. the first electrode is disposed at a position overlapping with the first portion in a vertical direction, The second electrode is disposed at a position overlapping with the second portion in the vertical direction. The semiconductor device according to claim 1 .

5. The semiconductor device according to claim 1 , wherein the first layer contains a metal element and a silicon element.

6. The semiconductor device according to claim 1 , wherein the second layer is provided on a lower surface of the first layer.

7. The semiconductor device according to claim 1 , wherein the second layer is provided on an upper surface of the first layer.

8. The semiconductor device according to claim 6 , wherein the second electrode penetrates through the first layer.

9. The semiconductor device according to claim 6 , wherein the second electrode is in contact with the second layer.

10. the second layer has a tapered side surface; The first layer is in contact with an upper surface and a side surface of the tapered shape of the second layer. The semiconductor device according to claim 6.

11. a second resistive layer disposed on the substrate; a third electrode in contact with a lower surface of the second resistive layer and electrically connected to the second electrode; a fourth electrode in contact with an upper surface of the second resistive layer; The semiconductor device according to claim 1 , further comprising:

12. a first wiring in contact with a lower surface of the first electrode; a second wiring in contact with an upper surface of the second electrode and a lower surface of the third electrode; a third wiring in contact with an upper surface of the fourth electrode; The semiconductor device according to claim 11 , further comprising:

13. 13. The semiconductor device according to claim 12, wherein at least one of said second electrode and said second wiring and said third electrode and said third wiring forms a dual damascene wiring.

14. A substrate, a first resistive layer disposed on the substrate; a first electrode in contact with a lower surface of the first resistive layer; a second electrode in contact with an upper surface of the first resistive layer; Equipped with The first resistive layer is provided between a photoelectric conversion element and a signal processing circuit. Semiconductor device.

15. The semiconductor device according to claim 14 , wherein the photoelectric conversion element is provided within the substrate.

16. The semiconductor device according to claim 14 , wherein the photoelectric conversion element is a SPAD (Single Photon Avalanche Diode).

17. The substrate is a first surface on which the first resistive layer, the first electrode, and the second electrode are provided; a second surface provided with a lens that allows light to be incident on the photoelectric conversion element; The semiconductor device according to claim 14 , comprising:

18. forming a first electrode on a substrate; forming a first resistive layer in contact with an upper surface of the first electrode; forming a second electrode in contact with an upper surface of the first resistive layer; Including, The first resistive layer is formed to include a first layer and a second layer having an electrical resistivity lower than an electrical resistivity of the first layer, the second layer is formed to include a first portion provided on the first electrode side and a second portion provided on the second electrode side and separated from the first portion; A method for manufacturing a semiconductor device.

Citation Information

Patent Citations

  • Semiconductor device, and manufacturing method thereof

    JP2009021509A

  • Semiconductor device, and manufacturing method of the same

    JP2009302082A

  • Semiconductor device

    JP2018056558A

  • photodetector

    JP2018201005A

  • Semiconductor device

    JP2019192690A