Imaging device
By adopting a double-layer substrate structure in the imaging device, combining photoelectric conversion units, signal transmission lines, constant current source circuits and bias circuits, the problem of insufficient freedom in the element layout of existing equipment is solved, and more efficient signal processing and noise suppression are achieved.
Patent Information
- Application Number
- JP2023082336
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-02-28
- Filing Date
- 2023-05-18
- Publication Date
- 2025-05-07
- Estimated Expiration
- 2039-02-04
AI Technical Summary
The lack of freedom in element layout of existing imaging devices limits the design and optimization of the device.
A double-layer substrate structure is adopted, in which one layer of substrate includes a photoelectric conversion unit and a signal transmission line, and the other layer of substrate includes a constant current source circuit and a bias circuit. The effective transmission and processing of signals are achieved by connecting these circuits.
It improves the freedom of the imaging equipment in element layout, enhances the design and optimization capabilities of the equipment, and achieves more efficient signal processing and noise suppression.
Smart Images

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Figure 0007672062000003
Abstract
Description
[Technical field]
[0001] The present invention relates to an imaging device. [Background technology]
[0002] In recent years, imaging devices have been widely used in various product fields such as video cameras, digital still cameras, security cameras, and vehicle-mounted cameras. A CMOS (Complementary Metal Oxide Semiconductor) type solid-state imaging device or a CMOS (Complementary Metal Oxide Semiconductor) type solid-state imaging device is used.
[0003] For example, Patent Document 1 discloses a CMOS type solid-state imaging device. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2010-129705 A Summary of the Invention [Problem to be solved by the invention]
[0005] In imaging devices, there is a demand for greater freedom in element layout. [Means for solving the problem]
[0006] According to certain non-limiting exemplary embodiments of the present disclosure, the following is provided: an imaging device comprising: a first substrate; a second substrate stacked on the first substrate; and a first connection portion and a second connection portion, each of which is located between the first substrate and the second substrate; the first substrate includes at least a portion of a first pixel and at least a portion of a second pixel, each of which includes a photoelectric conversion portion that photoelectrically converts incident light and generates a signal charge; and the second substrate includes a first wiring and a constant current source circuit connected to the at least a portion of the first pixel via the first wiring and the first connection portion, and connected to the at least a portion of the second pixel via the first wiring and the second connection portion.
[0007] an imaging device comprising: a first substrate; a second substrate stacked on the first substrate; and a first connection portion and a second connection portion, each of which is located between the first substrate and the second substrate; the first substrate includes at least a portion of a first pixel and at least a portion of a second pixel, each of the at least a portion of the first pixel and the at least a portion of the second pixel including a photoelectric conversion portion that photoelectrically converts incident light to generate a signal charge; and the second substrate includes a first wiring and a bias circuit connected to the at least a portion of the first pixel via the first wiring and the second connection portion, and connected to the at least a portion of the second pixel via the first wiring and the second connection portion. Effect of the Invention
[0008] According to one aspect of the present disclosure, an imaging device with increased freedom in element layout can be provided. [Brief description of the drawings]
[0009] [Figure 1] FIG. 1 is a schematic diagram illustrating an exemplary overall configuration of an imaging device according to a first embodiment. [Diagram 2] FIG. 2 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the first embodiment. [Diagram 3] FIG. 3 is a schematic diagram showing simple components of a pixel according to the first embodiment. [Figure 4] FIG. 4 is a schematic diagram showing a specific configuration of the imaging device according to the first embodiment. [Figure 5A] FIG. 5A is a schematic diagram showing an example of the operation of the imaging device according to the first embodiment. [Figure 5B] FIG. 5B is a schematic diagram showing an example of the operation of the imaging device according to the first embodiment. [Figure 6] FIG. 6 is a timing chart illustrating an example of the operation of the imaging device according to the first embodiment. [Figure 7] FIG. 7 is a schematic diagram showing a circuit configuration of an imaging device in a reference example when resetting. [Figure 8A] FIG. 8A is a schematic diagram showing the operation of a common-source circuit when no wiring resistance is provided on the source side. [Figure 8B] FIG. 8B is a schematic diagram showing the operation of the source grounding circuit when a wiring resistance is provided on the source side. [Figure 9] FIG. 9 is a schematic diagram illustrating an example of a source degeneration countermeasure according to the first embodiment. [Figure 10A] FIG. 10A is a schematic diagram showing the relationship between a pixel and a constant current source and a voltage source when the constant current source and the voltage source are formed on a first substrate. [Figure 10B] FIG. 10B is a schematic diagram showing the relationship between the pixels and the constant current source and voltage source in the case where the constant current source and voltage source are formed on the second substrate. [Figure 11] FIG. 11 is a schematic diagram showing another example of a measure against source degeneration according to the first embodiment. [Figure 12] FIG. 12 is a schematic diagram showing another example of a measure against source degeneration according to the first embodiment. [Figure 13] FIG. 13 is a schematic diagram showing in a simplified manner the board connection portion CON according to the first embodiment. [Figure 14] FIG. 14 is a schematic diagram showing in a simplified manner the board connection portion CON according to the first embodiment. [Figure 15]FIG. 15 is a schematic diagram illustrating an exemplary circuit configuration of the detection circuit according to the first embodiment. [Figure 16] FIG. 16 is a schematic diagram illustrating an exemplary circuit configuration of the detection circuit according to the first embodiment. [Figure 17] FIG. 17 is a timing chart showing an example of the operation of the detection circuit according to the first embodiment. [Figure 18] FIG. 18 is a timing chart showing another example of the operation of the detection circuit according to the first embodiment. [Figure 19] FIG. 19 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the second embodiment. [Figure 20] FIG. 20 is a schematic diagram illustrating an exemplary circuit configuration of a detection circuit according to the second embodiment. [Figure 21] FIG. 21 is a schematic diagram illustrating an exemplary circuit configuration of a detection circuit according to the second embodiment. [Figure 22] FIG. 22 is a timing chart showing an example of the operation of the detection circuit according to the second embodiment. [Figure 23] FIG. 23 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. In FIG. [Figure 24] FIG. 24 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. In FIG. [Diagram 25] FIG. 25 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Figure 26] FIG. 26 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. In FIG. [Figure 27] FIG. 27 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. In FIG. [Figure 28] FIG. 28 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Figure 29] FIG. 29 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Diagram 30] FIG. 30 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Diagram 31] FIG. 31 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Diagram 32] FIG. 32 is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the second embodiment. As shown in FIG. [Diagram 33] FIG. 33 is a timing chart showing another example of the operation of the detection circuit according to the second embodiment. [Diagram 34] FIG. 34 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the third embodiment. [Figure 35A] FIG. 35A is a schematic diagram illustrating an exemplary circuit configuration of a detection circuit according to the third embodiment. [Figure 35B] FIG. 35B is a schematic diagram showing another exemplary circuit configuration of the detection circuit according to the third embodiment. As shown in FIG. [Diagram 36] FIG. 36 is a timing chart showing an example of the operation of the detection circuit according to the third embodiment. [Figure 37A] FIG. 37A is a schematic diagram showing yet another exemplary circuit configuration of the detection circuit according to the third embodiment. FIG. [Figure 37B] FIG. 37B is a schematic diagram showing yet another exemplary circuit configuration of the detection circuit according to the third embodiment. As shown in FIG. [Figure 38A] FIG. 38A is a schematic diagram showing yet another exemplary circuit configuration of the detection circuit according to the third embodiment. FIG. [Figure 38B] FIG. 38B is a schematic diagram showing yet another exemplary circuit configuration of the detection circuit according to the third embodiment. As shown in FIG. [Figure 39] FIG. 39 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the fourth embodiment. [Diagram 40] FIG. 40 is a schematic diagram illustrating an exemplary circuit configuration of a detection circuit according to the fourth embodiment. As shown in FIG. [Diagram 41]FIG. 41 is a timing chart showing an example of the operation of the detection circuit according to the fourth embodiment. [Diagram 42] FIG. 42 is a timing chart showing another example of the operation of the detection circuit according to the fourth embodiment. [Diagram 43] FIG. 43 is a schematic diagram showing another exemplary repetitive exposure characteristic of the detection circuit according to the fourth embodiment. [Diagram 44] FIG. 44 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the fifth embodiment. [Diagram 45] FIG. 45 is a schematic diagram showing another exemplary circuit configuration of the pixel according to the fifth embodiment. In FIG. [Figure 46] FIG. 46 is a schematic diagram illustrating an exemplary circuit configuration of a detection circuit according to the fifth embodiment. As shown in FIG. [Figure 47] FIG. 47 is a timing chart showing an example of the operation of the detection circuit according to the fifth embodiment. [Figure 48] FIG. 48 is a timing chart showing another example of the operation of the detection circuit according to the fifth embodiment. [Figure 49] FIG. 49 is a schematic diagram showing still another exemplary circuit configuration of the detection circuit according to the fifth embodiment. As shown in FIG. [Figure 50] FIG. 50 is a schematic diagram showing yet another exemplary circuit configuration of the detection circuit according to the fifth embodiment. As shown in FIG. [Figure 51] FIG. 51 is a schematic diagram illustrating an exemplary circuit configuration of a pixel according to the sixth embodiment. [Figure 52] FIG. 52 is a schematic diagram showing another exemplary circuit configuration of the pixel according to the sixth embodiment. In FIG. [Diagram 53] FIG. 53 is a schematic diagram showing another exemplary circuit configuration of the pixel according to the sixth embodiment. In FIG. [Figure 54] FIG. 54 is a schematic diagram showing another exemplary circuit configuration of a pixel according to the sixth embodiment. In FIG. [Figure 55] FIG. 55 is a schematic diagram illustrating an exemplary cross section of an imaging device according to the sixth embodiment. [Figure 56] FIG. 56 is a schematic diagram illustrating an exemplary cross section of an imaging device according to the sixth embodiment. [Figure 57] FIG. 57 is a schematic diagram illustrating an example of a stack according to the seventh embodiment. As shown in FIG. [Figure 58] FIG. 58 is a schematic diagram illustrating an example of a stack according to the seventh embodiment. As shown in FIG. [Figure 59] FIG. 59 is a schematic diagram illustrating an exemplary configuration of a camera system according to the eighth embodiment. As shown in FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] An outline of one aspect of the present disclosure is as follows.
[0011] [Item 1] A first substrate; a second substrate laminated on the first substrate; Equipped with The first substrate is a photoelectric conversion unit that performs photoelectric conversion on incident light to generate a signal charge; a first transistor having a gate connected to the photoelectric conversion unit and outputting a signal corresponding to the signal charge; a second transistor, one of a source and a drain of which is connected to the photoelectric conversion unit, and the other of the source and the drain of which is connected to the source or the drain of the first transistor; Including, The second substrate is a constant current source circuit connected to the one of the source and drain of the first transistor; a bias circuit connected to the other of the source and the drain of the first transistor and configured to generate a first voltage and a second voltage different from the first voltage; 13. An imaging device comprising:
[0012] [Item 2] The first substrate is provided in front of the photoelectric conversion unit and the source and drain of the second transistor. a first capacitance element connected between the first and second capacitance elements, 2. The imaging device according to item 1, wherein the one of the source and the drain of the second transistor is connected to the photoelectric conversion unit via the first capacitance element.
[0013] [Item 3] 3. The imaging device according to claim 1, wherein the first substrate includes a second capacitive element having one end connected to the one of the source and the drain of the second transistor and having the other end to which a third voltage is applied. Device.
[0014] [Item 4] 3. The imaging device according to claim 1, wherein the second substrate includes a second capacitive element having one end connected to the one of the source and drain of the second transistor and having the other end to which a third voltage is applied.
[0015] [Item 5] the first substrate further includes a second capacitive element having one end connected to the one of the source and the drain of the second transistor and having the other end to which a third voltage is applied; 3. The imaging device according to claim 1, wherein the second substrate includes a third capacitive element having one end connected to the one of the source and drain of the second transistor and having the other end to which the third voltage is applied.
[0016] [Item 6] 6. The imaging device of any one of items 1 to 5, wherein the first substrate includes a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor and the other of a source and drain connected to the constant current source circuit.
[0017] [Item 7] 6. The imaging device of any one of items 1 to 5, wherein the second substrate includes a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor and the other of a source and drain connected to the constant current source circuit.
[0018] [Item 8] the constant current source circuit includes a first constant current source and a second constant current source different from the first constant current source; 6. An imaging device according to any one of items 1 to 5, wherein either the first constant current source or the second constant current source is configured to be selectively connected to the one of the source and drain of the first transistor.
[0019] [Item 9] 9. The imaging device of item 8, wherein the first substrate includes a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor and the other of a source and drain connected to the first constant current source.
[0020] [Item 10] 9. The imaging device of item 8, wherein the second substrate includes a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor and the other of a source and drain connected to the first constant current source.
[0021] [Item 11] the constant current source circuit includes a first constant current source and a voltage source that generates a third voltage; 6. An imaging device according to any one of items 1 to 5, wherein either the first constant current source or the voltage source is configured to selectively connect to the one of the source and drain of the first transistor.
[0022] [Item 12] Item 12. The imaging device of item 11, wherein the first substrate includes a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor and the other of a source and drain connected to the constant current source circuit.
[0023] [Item 13] 13. The imaging device of any one of items 1 to 12, wherein the first substrate includes a fourth transistor connected between the photoelectric conversion unit and the first transistor.
[0024] [Item 14] 14. The imaging device of any one of items 1 to 13, wherein the other of the source and drain of the second transistor is connected to the one of the first transistor.
[0025] [Item 15] A first substrate; a second substrate laminated on the first substrate; Equipped with The first substrate is a photoelectric conversion unit that performs photoelectric conversion on incident light to generate a signal charge; a first transistor having a gate connected to the charge storage region and configured to output a signal corresponding to the signal charge; a second transistor, the gate of which and one of the source and drain of which are connected to the photoelectric conversion unit; Including, The second substrate is a constant current source circuit connected to one of the source and drain of the first transistor; a signal generating circuit connected to the other of the source and the drain of the second transistor and configured to generate a signal; 13. An imaging device comprising:
[0026] [Item 16] the first substrate includes a first capacitance element connected between the photoelectric conversion unit and the one of the source and the drain of the second transistor; Item 16. The imaging device according to item 15, wherein the one of the source and the drain and the gate of the second transistor are connected to the photoelectric conversion unit via the first capacitance element.
[0027] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.
[0028] An overview of one aspect of the present disclosure is as follows.
[0029] An imaging device according to one embodiment of the present disclosure comprises a first substrate and a second substrate stacked on the first substrate and electrically connected to the first substrate, the first substrate having pixels including a photoelectric conversion unit that converts incident light into an electric charge and a detection circuit that detects the electric charge, the detection circuit having a first terminal connected to the photoelectric conversion unit and a second terminal and a third terminal electrically connected to the second substrate.
[0030] This configuration allows greater freedom in element layout.
[0031] The detection circuit may also have a first transistor that outputs a signal corresponding to the charge, one of a source and a drain of the first transistor being electrically connected to the second substrate via the second terminal, and the other being electrically connected to the second substrate via the third terminal.
[0032] This makes it possible to amplify a signal voltage corresponding to the amount of signal charge generated in the photoelectric conversion portion.
[0033] The detection circuit may also include a charge accumulation region that accumulates the charge generated in the photoelectric conversion unit, and a second transistor having one of its source and drain electrically connected to the charge accumulation region and resetting the charge accumulation region, and one of the source and drain of the first transistor may be electrically connected to the other of the source and drain of the second transistor.
[0034] This makes it possible to further effectively suppress reset noise.
[0035] The detection circuit may further include a charge accumulation region that accumulates the charge generated in the photoelectric conversion unit, a first transistor that outputs a signal corresponding to the charge, and a second transistor that resets the charge accumulation region, wherein a gate of the second transistor is electrically connected to the charge accumulation region, one of a source and a drain of the first transistor is electrically connected to the second substrate via the second terminal, and one of a source and a drain of the second transistor is electrically connected to the second substrate via the third terminal.
[0036] This makes it possible to accumulate and reset the charges converted by the photoelectric conversion portion.
[0037] The pixel may also have a third transistor having one of a source and a drain connected to the one of the source and drain of the first transistor, and the other of the source and drain of the third transistor may be electrically connected to the second substrate via the second terminal.
[0038] This makes it possible to selectively output the output of the first transistor to the second substrate.
[0039] The second substrate may also have a current source electrically connected to the one of the source and drain of the first transistor, and a bias circuit electrically connected to the other of the source and drain of the first transistor.
[0040] This allows the pixels, the current sources and the bias circuits to be arranged on different substrates.
[0041] In addition, the bias circuit may output a first voltage during a first period in which the signal is read out, and output a second voltage different from the first voltage during a second period in which the charge storage region is reset, and the current source may output a first current during the first period, and output a second current different from the first current during the second period.
[0042] This makes it possible to operate the first transistor in different operation modes in the first and second periods.
[0043] Hereinafter, an embodiment of the present disclosure will be described with reference to the drawings. Note that the present disclosure is not limited to the following embodiment. In addition, appropriate modifications are possible within the scope of the effects of the present invention. Furthermore, one embodiment can be combined with another embodiment. In the following description, the same or similar components are denoted by the same reference numerals. Also, duplicated descriptions may be omitted.
[0044] In the first to eighth embodiments described below, except for some transistors, in principle, each transistor in the read circuit is an NMOS transistor. Of course, PMOS transistors may be used instead of NMOS transistors. In that case, the polarity of each control signal is inverted. NMOS transistors and PMOS transistors may be used in combination.
[0045] (Embodiment 1) 1 is a diagram showing a schematic diagram of an overall configuration of an imaging device according to a first embodiment of the present invention. The imaging device 100 includes a pixel array 310 consisting of a plurality of pixels 311, and a peripheral circuit. In the example shown in the figure, the plurality of pixels 311 are arranged in a row direction and a column direction. In this specification, the row direction and the column direction refer to the directions in which the rows and columns extend, respectively. That is, in the drawing, the vertical direction (up and down direction) is the column direction, and the horizontal direction (left and right direction) is the row direction.
[0046] In FIG. 1, a pixel array 310 of an imaging device in this embodiment includes pixels 311, a detection circuit 312 arranged in each pixel 311, a bias signal line 313, and an output signal line 314.
[0047] The number of pixels 311 in the pixel array 310 may be, for example, several million to several tens of millions. In order to avoid overly complicating the drawing, Fig. 1 representatively shows a group of four pixels 311 in total, two aligned in the row direction and two aligned in the column direction.
[0048] 1 shows the arrangement of the pixels 311 only diagrammatically, and the pixels 311 arranged in the column direction do not need to be arranged in a strict straight line. For example, between two pixels 311 adjacent to each other in the column direction, the center of one may be shifted from the center of the other by about half the pixel pitch in the row direction. Similarly, the pixels 311 arranged in the row direction do not need to be arranged in a strict straight line in the row direction.
[0049] Each pixel 311 in Fig. 1 includes a detection circuit 312. The detection circuit 312 has two terminals connected to the outside of the pixel 311. One terminal of the detection circuit 312 is connected to an output signal line 314. For example, this corresponds to a second terminal 316 in Fig. 2 described later. The other terminal of the detection circuit 312 is connected to a bias signal line 313. For example, this corresponds to a third terminal 317 in Fig. 2 described later.
[0050] 1, the pixels 311 belonging to the same column are shown as being connected to the same output signal line 314 and bias signal line 313, but this is not necessarily the case. For example, the pixels may be connected to different output signal lines or bias signal lines in units of pixel array blocks.
[0051] The peripheral circuits include a bias control circuit 320, a constant current source circuit 330, a column signal processing circuit 340, a vertical scanning circuit 350, and a horizontal signal readout circuit 360. The column signal processing circuit 340 is also called a row signal storage circuit. The vertical scanning circuit 350 is also called a row scanning circuit. The horizontal signal readout circuit 360 is also called a column scanning circuit. The bias control circuit 320, the constant current source circuit 330, and the column signal processing circuit 340 may be arranged for each column of the pixels 311 arranged two-dimensionally.
[0052] An example of the configuration of the peripheral circuit will be described below.
[0053] The vertical scanning circuit 350 is connected to the selection control signal line Vsel and the band control signal line Vfb. The vertical scanning circuit 350 applies a predetermined voltage to the selection control signal line Vsel to select a plurality of pixels 311 arranged in each row on a row-by-row basis. This causes the signal voltage of the selected pixel 311 to be read out and the pixel to be reset, which will be described later.
[0054] The pixels 311 arranged in each column are electrically connected to a column signal processing circuit 340 via an output signal line 314. The column signal processing circuit 340 performs noise suppression signal processing, such as correlated double sampling (CDS), and analog-to-digital conversion (AD conversion). The column signal processing circuits 340 are connected to a horizontal signal readout circuit 360. The horizontal signal readout circuit 360 reads out signals from the column signal processing circuits 340 and outputs the signals to a horizontal common signal line 361. Note that, although the output signal line 314 is connected to one column signal processing circuit 340 in FIG. 1, the present disclosure is not limited to this configuration. For example, a configuration may be adopted in which two or more output signal lines are connected to each column, and each output signal line is connected to a different column signal processing circuit 340.
[0055] In addition, in FIG. 1, the bias control circuit 320 is arranged above the pixel array 310, and the constant current source circuit 330, the column signal processing circuit 340, and the horizontal signal readout circuit 360 are arranged below the pixel array 310, but this is an example illustrated in the present disclosure and does not specify the physical arrangement in the actual configuration. All of these circuits may be arranged either above or below the pixel array 310, or may be arranged on both the top and bottom of the pixel array 310. The arrangement of the vertical scanning circuit 350 is also not limited to the arrangement on the left side of the pixel array 310 as shown in FIG. 1. The vertical scanning circuit 350 may be arranged on the right side of the pixel array 310, or multiple vertical scanning circuits 350 may be provided and arranged on both the left and right sides.
[0056] In this embodiment, the pixel array 310 is provided on a first substrate 101. The first substrate 101 is shown, for example, in FIG. 2, which will be described later. Peripheral circuits, that is, a bias control circuit 320, a constant current source circuit 330, a column signal processing circuit 340, a vertical scanning circuit 350, and a horizontal signal readout circuit 360, are provided on a second substrate 102. The second substrate 102 is shown, for example, in FIG. 2, which will be described later. Each substrate may be a semiconductor substrate. For example, it may be an SOI (silicon on insulator) substrate.
[0057] 1, the bias control circuit 320, the constant current source circuit 330, and the column signal processing circuit 340 are arranged in each column, but they may be arranged for each pixel or for every several pixels on the second substrate 102. By configuring in this way, the distance from the pixel to blocks such as the bias control circuit 320, the constant current source circuit 330, and the column signal processing circuit 340 becomes shorter. This makes it possible to reduce the parasitic capacitance and wiring resistance of the wiring connecting them, or to reduce the amount of current flowing in each circuit.
[0058] In addition, the vertical scanning circuit 350 may be provided on the second substrate 102 .
[0059] 2 is a schematic diagram showing an exemplary circuit configuration of the imaging device 100 according to this embodiment. The pixel 311A includes a photoelectric conversion unit 1 and a detection circuit 312.
[0060] The photoelectric conversion section 1 converts incident light into electricity to generate electric charges.
[0061] The detection circuit 312 detects the charge generated by the photoelectric conversion unit 1. The charge generated in the conversion unit 1 is accumulated in the charge accumulation region FD and read out by the detection circuit 312. The detection circuit 312 is electrically connected to the second substrate 102 via a substrate connection part CON provided on the first substrate 101. In this case, the substrate connection part CON is provided at a connection part with the output signal line 314 and the bias signal line 313. That is, the detection circuit 312 has a first terminal 315 connected to the photoelectric conversion unit 1, and a second terminal 316 and a third terminal 317 electrically connected to the second substrate 102.
[0062] If the wiring resistance increases in the bias signal line 313, which is the voltage application path to the detection circuit 312, or in the output signal line 314, which is the voltage readout path, the effective voltage range of the readout signal may be reduced or signal propagation may be delayed due to RC components.
[0063] 2 of this embodiment, the bias signal line 313 and the output signal line 314, which have conventionally been arranged inside the pixel, can be arranged outside the pixel. This allows the bias signal line 313 and the output signal line 314 to be wider wiring. This allows the bias signal line 313 and the output signal line 314 to have low resistance.
[0064] Furthermore, by arranging the bias signal line 313 and the output signal line 314, which have conventionally been arranged within the pixel, on a second substrate different from the first substrate on which the pixels are arranged, it is possible to alleviate the constraints on the layout of the imaging device. Furthermore, by arranging the transistors used when reading out signals from the pixels in a position close to the photoelectric conversion unit 1, that is, on the first substrate 101, it is possible to suppress the introduction of noise. The transistors used when reading out signals from the pixels are, for example, amplification transistors and transfer transistors. On the other hand, selection transistors and reset transistors, which have relatively little effect on pixel signals, may be arranged on the second substrate 102. The selection transistors and reset transistors will be described later.
[0065] For example, the multiple bias signal lines 313 may be wired in a mesh shape within the second substrate 102. By wiring the bias signal lines 313 in a mesh shape, the number of paths through which a current flows increases, thereby reducing the wiring resistance value.
[0066] As shown in FIG. 3, the detection circuit 312 may be configured with an amplification transistor 4121A.
[0067] Fig. 4 shows a more specific example of the pixel array 310 having the configuration in Fig. 1, as well as the bias control circuit 320 and the constant current source circuit 330. The pixel 311 shown in Fig. 2 can have a circuit configuration like that of pixels 411A and 411B in Fig. 4, for example.
[0068] 2 may be realized as a source follower transistor SF (for example, an amplifier transistor 4121A) as shown in FIG. 4. The source and drain of the amplifier transistor 4121A are each electrically connected to the second substrate 102 via a substrate connection part CON. An output signal line 314 is connected to one of the source and drain of the amplifier transistor 4121A, and a bias signal line 313 is connected to the other of the source and drain. The bias control circuit 320 and the constant current source circuit 330 are disposed on the second substrate 102.
[0069] The bias control circuit 320 applies a bias to the amplifier transistor 4121A via a bias signal line 313.
[0070] The constant current source circuit 330 supplies a current via the output signal line 314 to the amplifier transistor 4121A.
[0071] Fig. 4 illustrates pixels 311 in two rows and one column of the pixel array 310 shown in Fig. 1. The pixel 411A located in the nth row includes a band control transistor 4111A, a photoelectric conversion unit 4112A, a detection circuit 412A, and a charge storage region FD.
[0072] The photoelectric conversion unit 4112A detects light and generates electric charges. The photoelectric conversion unit 4112A may be configured with upper and lower electrodes and a light receiving layer sandwiched between the electrodes as disclosed in Patent Document 1, or may be a photodiode. The charge accumulation region FD accumulates the signal charges generated by the photoelectric conversion unit 4112A.
[0073] The detection circuit 412A includes an amplification transistor 4121A and a selection transistor 4122A. The gate of the amplification transistor 4121A is connected to the charge storage region FD. The amplification transistor 4121A outputs a signal corresponding to the charge generated by the photoelectric conversion unit 4112A. The selection transistor 4122A selectively outputs the output of the amplification transistor 4121A to the outside of the pixel 411A. One of the source and drain of the amplification transistor 4121A is connected to one of the source and drain of the band control transistor 4111A and one of the source and drain of the selection transistor 4122A. Furthermore, the other of the source and drain of the amplification transistor 4121A is connected to the bias signal line 313. The other of the source and drain of the selection transistor 4122A is connected to the output signal line 314A. Moreover, the other of the source and drain of the band control transistor 4111A is connected to the charge storage region FD.
[0074] A band control signal line Vfb is connected to the gate of the band control transistor 4111A. The state of the band control transistor 4111A is determined by the voltage of the band control signal line Vfb. For example, when the voltage of the band control signal line Vfb is at a high level, the band control transistor 4111A is turned on. As a result, a feedback path is formed by the charge storage region FD, the amplifier transistor 4121A, and the band control transistor 4111A.
[0075] When the voltage of the band control signal line Vfb becomes lower, the resistance component of the band control transistor 4111A becomes larger. Therefore, the band of the band control transistor 4111A becomes narrower, and the frequency range of the feedback signal becomes narrower. When the voltage of the band control signal line Vfb becomes an even lower low level, the band control transistor 4111A turns off. As a result, no feedback path is formed.
[0076] The other of the source and drain of the selection transistor 4122A is connected to the output signal line 314A. A selection control signal line Vsel is connected to the gate of the selection transistor 4122A. The state of the selection transistor 4122A is determined by the voltage of the selection control signal line Vsel. For example, when the voltage of the selection control signal line Vsel is at a high level, the selection transistor 4122A is turned on. As a result, the amplification transistor 4121A and the output signal line 314 are electrically connected. When the voltage of the selection control signal line Vsel is at a low level, the selection transistor 4122A is turned off. As a result, the amplification transistor 4121A and the output signal line 314 are electrically separated.
[0077] The voltage of the band control signal line Vfb and the voltage of the selection control signal line Vsel are supplied by, for example, the vertical scanning circuit 350 in FIG.
[0078] The other of the source and drain of the amplifying transistor 4121A is connected to a bias signal line 313, and is connected to a bias control circuit 320 via the bias signal line 313. The internal configuration of the bias control circuit 320 will be described in detail below.
[0079] The other of the source and drain of the amplifying transistor 4121A is connected to the bias signal line 313 and a switch element 421 to a voltage source Va1. The other of the source and drain of the amplifying transistor 4121A is also connected to a voltage source Va2 via a bias signal line 313 and a switch element 422. The switch element 421 is controlled by a control signal R1, and the switch element 422 is controlled by a control signal R1b. That is, by controlling the bias control circuit 320 by the control signals R1 and R1b, the voltage applied to the other of the source and drain of the amplifying transistor 4121A can be switched to the voltage Va1 or the voltage Va2. The voltage of the voltage source Va1 is, for example, a ground voltage GND. The voltage of the voltage source Va2 is, for example, a power supply voltage VDD.
[0080] The pixel 411B located in the (n+1)th row has a configuration similar to that of the pixel 411A. That is, the pixel 411B includes a band control transistor 4111B, a photoelectric conversion unit 4112B, and a detection circuit 412B, and the detection circuit 412B includes an amplification transistor 4121B and a selection transistor 4122B.
[0081] The constant current source circuit 330 is connected to the output signal line 314. The constant current source circuit 330 includes a constant current source 433 that flows a current toward the selection transistor 4122A in the detection circuit 412A (upward in the drawing) and a constant current source 434 that draws out a current (downward in the drawing). The constant current source 433 is connected to the output signal line 314 via a switch element 431. The constant current source 434 is connected to the output signal line 314 via a switch element 432. When the selection transistor 4122A, the switch element 422 in the bias control circuit 320, and the switch element 432 in the constant current source circuit 330 are in an on state, a source follower circuit is formed by the selection transistor 4122A, the amplification transistor 4121A, and the constant current source 434. At this time, a signal corresponding to the signal stored in the charge storage region FD is output to the output signal line 314 and read out to the outside. On the other hand, when the selection transistor 4122A, the switch element 421 in the bias control circuit 320, and the switch element 431 in the constant current source circuit 330 are in the on state, the selection transistor 4122A, the amplifier transistor 4121A, and the constant current source 433 form a source-grounded amplifier circuit.
[0082] As shown in FIG. 4, a constant current source circuit 330 may be provided for each output signal line 314, or one constant current source element circuit 330 may be connected to a plurality of output signal lines 314. Such a configuration can reduce the number of elements in the imaging device. Although FIG. 4 shows a configuration in which both the bias control circuit 320 and the constant current source circuit 330 are arranged on the second substrate 102, one of them may be arranged on the second substrate 102 and the other on the first substrate 101. In this case, a current source composed of transistors having the same polarity as the transistors constituting the pixels may be arranged on the first substrate 101, and a transistor showing the opposite polarity may be arranged on the second substrate 102. For example, the pixel circuit and the constant current source 434 may be composed of NMOS transistors and arranged on the first substrate 101, and the constant current source 433 may be composed of PMOS transistors and arranged on the second substrate 102.
[0083] Next, the operation flow of the imaging device 100 in this embodiment will be described with reference to FIGS. 5A, 5B, and 6. FIG.
[0084] When reading out signal charges, as shown in FIG. 5A, the amplifying transistor 4121A and the constant current source 434 operate as a source follower circuit, and the signal voltage of the charge accumulation region FD is read out of the pixel with a gain of 1 or less.
[0085] On the other hand, when resetting the charge storage region FD or performing an electronic shutter, the image pickup device 100 is in a connection state as shown in FIG. 5B. Specifically, the amplifying transistor 4221A operates as an input transistor of a source-grounded amplifier, and the constant current source 433 operates as a load current source of the source-grounded amplifier. , and operates as a common-source amplifier with a gain of several tens of times. At this time, a connection point 455 between the selection transistor 4122A and the amplification transistor 4121A becomes the output of the common-source amplifier. The connection point 455 is connected to the charge storage region FD via the band control transistor 4111A to form a negative feedback circuit. The feedback gain of the negative feedback circuit at this time becomes the gain of the common-source amplifier.
[0086] The details of this operation are shown below.
[0087] 6 is a timing chart showing an example of the operation of the imaging device 100. The horizontal axis of each graph indicates time, and the vertical axis indicates, from the top, Vsel(A) indicates the voltage of the selection control signal line Vsel(A) supplied to the pixel 411A in the nth row. Vfb(A) indicates the voltage of the band control signal line Vfb(A) supplied to the pixel 411A in the nth row. Vsel(B) indicates the voltage of the selection control signal line Vsel(B) supplied to the pixel 411B in the n+1th row. Vfb(B) indicates the voltage of the band control signal line Vfb(B) supplied to the pixel 411B in the n+1th row. R1 indicates the control signal of the switch element 421 in the bias control circuit 320. R1b indicates the control signal of the switch element 422. S1 indicates the control signal of the switch element 432A in the constant current source circuit 330. S1b indicates the control signal of the switch element 431A. V313 indicates the voltage of the bias signal line 313 controlled by the bias control circuit 320. VS(A) indicates the voltage of the other of the source and drain of the amplifying transistor 4121A of the pixel 411A. VS(B) indicates the voltage of the other of the source and drain of the amplifying transistor 4121B of the pixel 411B.
[0088] A detailed description will be given below using the reference numerals of the components of pixel 411A.
[0089] (signal charge readout period) At time t1, the voltage of the selection control signal line Vsel(A) is set to a high level to turn on the selection transistor 4122. In addition, the control signal R1b is set to a high level to turn on the switch element 422. As a result, the voltage Va2 is applied to the other of the source and drain of the amplification transistor 4121A. Furthermore, the control signal S1 is set to a high level to turn on the switch element 432 of the constant current source element circuit 330. FIG. 5A illustrates the on / off state of each switch element and transistor at this time. In this state, the amplification transistor 4121A and the constant current source 434 form a source follower circuit. Then, the potential of the output signal line 314 becomes a voltage VSIG(A) according to the signal charge accumulated in the charge accumulation region FD. The amplification factor of the source follower circuit is about 1.
[0090] The voltage of the charge storage region FD changes by an amount corresponding to the signal charge generated in the photoelectric conversion unit 4112A during the period from the previous reset operation of the pixel 411A to time t1, with a reset voltage VRST (described later) as a reference.
[0091] (Reset period) At time t2 in FIG. 6, the voltage of the selection control signal line Vsel(A) continues to be at a high level. Therefore, the selection transistor 4122A is in an ON state. Also, at time t2, the voltage of the band control signal line Vfb(A) is set to a high level to turn the band control transistor 4111A into an ON state. Also, at time t2, the control signal R1 is set to a high level. As a result, the switch element 421 of the bias control circuit 320 is set to an ON state, and a voltage Va1 is applied to the other of the source and drain of the amplification transistor 4121A. Furthermore, at time t2, the control signal S1b is set to a high level. As a result, the switch element 431A of the constant current source circuit 330 is set to an ON state, and the constant current source 433 is connected to one of the source and drain of the selection transistor 4122A. At time t2, the selection transistor 4122A, the amplification transistor 4121A, and the constant current source 433 supply a source current to the selection transistor 4122A. A grounded source amplifier circuit is formed. In addition, since the band control transistor 4111A is in an on state, the input and output terminals of the grounded source amplifier circuit are shorted. FIG. 5B illustrates the on / off states of the switch elements and transistors at this time. At time t2, the charge storage region FD is reset to the reset voltage VRST by setting the switch elements and transistors of the imaging device 100 to the states shown in FIG. 5B.
[0092] At time t2, the band control signal line Vfb(A) is set to a high level, so that the operating band of the band control transistor 4111A is set to the first band, which is a wide band. This allows the voltage of the charge storage region FD to be quickly set to the reset voltage VRST.
[0093] In this embodiment, the reset period is provided in order to quickly set the charge storage region FD to the reset voltage VRST. However, if there is sufficient driving time, the charge storage region FD may be set to the reset voltage VRST within a noise suppression period described later without providing the reset period.
[0094] (Noise suppression period) 6, the voltage of the band control signal line Vfb(A) is set to a voltage between a high level and a low level. For example, it is set to a voltage intermediate between the high level and the low level. In this case, the operating band of the band control transistor 4111A becomes a second band narrower than the first band.
[0095] By making the second band sufficiently narrower than the operating band of the amplifier transistor 4121A, the noise suppression effect is increased. On the other hand, the time from time t3 to time t5, that is, the time required for noise suppression, becomes longer. Even if the second band is wider than the operating band of the amplifier transistor 4121A, the noise suppression effect can be obtained. Therefore, the designer can arbitrarily design the second band according to the allowable noise suppression time. In the following, the second band will be described as being sufficiently narrower than the operating band of the amplifier transistor 4121A.
[0096] In a state where the second band is narrower than the operating band of the amplifier transistor 4121A, the thermal noise generated in the band control transistor 4111A is suppressed by the feedback circuit. If the amplification factor of the source-grounded amplifier circuit formed by the selection transistor 4122A, the amplifier transistor 4121A, and the constant current source 433 is -A times, the thermal noise is suppressed to 1 / (1+A)1 / 2 times. Typically, A is greater than 1 and can be set to a value of several tens to several hundreds.
[0097] Next, at time t5, the voltage of the band control line Vfb(A) is set to low level, and the band control transistor 4111A is turned off. When the band control transistor 4111A is turned off, the kTC noise remaining in the charge storage region FD is also suppressed to 1 / (1+A)1 / 2 times compared to the case without feedback.
[0098] (Reset voltage readout period) After the reset operation and noise suppression operation of the pixel 411A are completed, the control signal R1b and the control signal S1 are made high level again at time t5 in Fig. 6. That is, the switch element 422 of the bias control circuit 320 and the switch element 432 of the constant current source element circuit 330 are turned on again to form the source follower circuit shown in Fig. 5A. As a result, the reset voltage VRST is read out from the charge storage region FD.
[0099] The effects of the first embodiment will be described with reference to FIGS.
[0100] FIG. 7 shows a schematic circuit configuration during a reset operation in an imaging device according to a reference example in which pixels and peripheral circuits are provided on the same substrate.
[0101] 3 are shown arranged in the same column in the row direction, for a total of four pixels. Pixels 411A to 411D are connected to the same bias signal line 313 and output signal line 314. A bias voltage Vbias is applied to the bias signal line 313 from a voltage source (not shown), and a current is passed through the output signal line 314 from a constant current source 433.
[0102] In FIG. 7, when resetting the pixel 411A, the imaging device 100 turns on the selection transistor 4122A to configure a common-source circuit in which the constant current source 433 serves as a load and the amplification transistor 4121A serves as an amplifier transistor.
[0103] However, at this time, the source side of the amplification transistor 4121A is in the same state as when the wiring resistance Rs of the bias signal line 313 is connected. The wiring resistance Rs is larger in the pixel 411A which is farther from the voltage source than the pixel 411D.
[0104] 8A and 8B, the operation of the common-source circuit with and without the wiring resistance Rs will be compared.
[0105] 8A and 8B, Vin represents the input to the common-source circuit. A charge storage region FD is connected to Vin. Vout represents the output of the common-source circuit.
[0106] In the common-source circuit shown in FIG. 8A, the gain Av is expressed as AV=-gm×Rd, using the load resistance Rd of the constant current source 433 and the mutual conductance gm of the amplifying transistor 4121A.
[0107] On the other hand, when the wiring resistance Rs is connected to the source of the amplifier transistor 4121A as shown in FIG. 8B, the current Id passed by the common-source circuit flows into the wiring resistance Rs. As a result, the gate-source voltage VGS input to the common-source circuit becomes a voltage that is reduced from Vin by Id×Rs. This phenomenon is called source degeneration. Due to this phenomenon, the gain Av of the common-source circuit decreases to Av=(-gm×Rd) / (1+gm×Rs). Therefore, in the common-source circuit, it is desirable to reduce the wiring resistance Rs connected to the source of the amplifier transistor 4121A.
[0108] FIG. 9 shows the configuration of the imaging device in the first embodiment. In FIG. 9, a bias signal line, an output signal line, a constant current source 433, and a voltage source for applying a voltage Vbias are provided for each pixel. In addition, the constant current source 433 and the voltage source are arranged on a substrate separate from the pixels, and are close to each pixel. For example, a first substrate on which pixels are provided and a second substrate on which constant current sources 433 and voltage sources are provided can be arranged in an overlapping manner, and the corresponding constant current source 433 and voltage source can be arranged directly below each pixel on the second substrate. This can shorten the distance between the pixel and the constant current source 433 and the voltage source. This configuration can reduce the wiring resistance RS. Furthermore, the bias signal line 313 and the output signal line 314 that extend from the pixel to the outside of the pixel array can be shortened, so that the parasitic capacitance associated with these wirings can be reduced. This can reduce the amount of current flowing through the bias signal line 313 and the output signal line 314.
[0109] 10A and 10B are used to show the distance between the pixel and the constant current source 433 and the voltage source. FIG. 10B shows the first substrate 101 in a perspective view to facilitate visibility. FIG. 10A is a diagram showing an example of the positional relationship between the pixel and the constant current source 433 in a reference example. FIG. 10B is a diagram showing an example of the positional relationship between the pixel and the constant current source 433 in the present embodiment. .
[0110] In the configuration shown in FIG. 10A, all pixels belonging to the same column are connected to the same output signal line 314 and bias signal line 313. In this case, the distance between the pixel farthest from the constant current source 433 and the constant current source 433 becomes longer as the scale of the pixel array 310 becomes larger. For example, if the constant current source 433 is provided only on the lower side of the pixel array 310, the size of the pixel array 310 in the row direction becomes the length of the output signal line 314 and the bias signal line 313 as it is. Therefore, the wiring resistance of the output signal line 314 and the bias signal line 313 becomes large. In addition, the output signal line 314 and the bias signal line 313 pass through all the pixels arranged in the same column. In that case, it is difficult to make the thickness of the output signal line 313 and the bias signal line 313 equal to or larger than a certain value. In addition, parasitic capacitance may occur between the wirings. Thus, in the configuration of the reference example, the wiring resistance may become large.
[0111] 10B, the pixel can be connected to a constant current source 433 provided directly below the pixel on the second substrate. Therefore, the distance of the output signal line 314 and the bias signal line 313 does not depend on the size of the pixel array 310. Also, since there is no need to design the output signal line 314 and the bias signal line 313 to pass through the pixel, each signal line can be made to have a certain thickness or more.
[0112] This configuration enables pixel parallel readout and pixel block parallel readout, which can increase the data rate.
[0113] With the configuration of this embodiment, even if the size of the pixel array 310 is large, it is possible to shorten the connection distance from the detection circuit 312 in the pixel to the column circuit such as the constant current source 433. In addition, for example, by making the substrate connection portion CON thicker, it is possible to further reduce the wiring resistance.
[0114] In addition, in the configuration of the present embodiment, it is also possible to increase the number of circuits connected to pixels compared to the reference example. In the configuration of the reference example, column circuits such as AD conversion circuits are commonly connected to pixels belonging to the same column. For example, when the pixel size is about several μm, the number of column circuits connected to each column is one or two. This is because the width of the column circuits connected to each column needs to be narrower than the width of the pixel, and the area in which the column circuits can be arranged is limited to the periphery of the pixel array. On the other hand, in the present embodiment, it is possible to arrange the column circuits on the second substrate 102. In addition, it is also possible to arrange the column circuits arranged for each column in the reference example for each pixel. Therefore, in the present embodiment, the number of circuits connected to pixels can be increased to a range equal to or close to the number of pixels.
[0115] In the configuration shown in FIG. 9, the constant current source 433 and the voltage source are provided for each pixel, but the constant current source 433 and the voltage source may be provided for each set of multiple pixels.
[0116] 11 and 12 show a modification of this embodiment.
[0117] FIG. 11 shows a configuration in which a constant current source 433 and a voltage source are provided for every two pixels.
[0118] In FIG. 12, the sources and drains of the amplification transistors are connected to each other for every two pixels on the first substrate 101, and then connected to the second substrate. This reduces the number of substrate connections, which reduces the possibility of poor connection between the substrates. This also makes it possible to increase the distance between the substrate connections CON. In other words, the connection pitch can be relaxed. This makes it possible to, for example, increase the size of the substrate connections CON. Therefore, by reducing the number of substrate connection parts CON, it is possible to reduce the possibility of a decrease in yield due to a connection defect between substrates.
[0119] 13 and 14 are schematic diagrams showing a configuration having a feedback configuration in a pixel in the first embodiment. As shown in FIG. 13, a pixel 311 provided on the first substrate 101 has a feedback circuit 30 in a pixel circuit. The feedback circuit 30 in the pixel circuit operates by applying a bias voltage to the pixel from the second substrate 102 via a bias signal line 313. The voltage applied to the bias signal line 313 may be different potentials in the signal charge readout period, the reset period, and the noise suppression period. Also, as shown in FIG. 14, a selection transistor SEL (selection transistor 4122A) may be arranged for each pixel. By arranging the selection transistor SEL on the first substrate 101 side, the electrical connection with the second substrate 102 can be switched on the first substrate 101 side. In FIG. 14, the selection transistor SEL (selection transistor 4122A) is inserted in either the source or drain of the amplification transistor 4121A, but the selection transistor SEL may be inserted in both.
[0120] 15 is a schematic diagram showing a circuit configuration of the detection circuit 312. The feedback circuit 30 forms a feedback path for negatively feeding back, via the amplification transistor 200, a signal voltage corresponding to the signal charge generated by the photoelectric conversion unit 4112A.
[0121] The amplifier 2 has an amplifying transistor 200 and a switching circuit 20 including a switch element 11 and a switch element 12. The transistors in the detection circuit 312 are assumed to be NMOS transistors. The electrical connection relationship of the detection circuit 312 will be described below.
[0122] A charge accumulation region FD is connected to the gate of the amplifying transistor 200. The band control section 3 includes a band control transistor 300. The output selection section 5 includes a selection transistor 500. One of the source and drain of the amplifying transistor 200 is connected to one of the source and drain of the band control transistor 300 and one of the source and drain of the selection transistor 500. The other of the source and drain of the band control transistor 300 is connected to the charge accumulation region FD. An RC filter circuit is formed by the band control transistor 300 and a capacitance component parasitic to the charge accumulation region FD.
[0123] A band control signal line CON1 is connected to the gate of the band control transistor 300. The state of the band control transistor 300 is determined by the voltage of the band control signal line CON1. For example, when the voltage of the band control signal line CON1 is at a high level, the band control transistor 300 is turned on. As a result, a feedback path is formed by the charge storage region FD, the amplifying transistor 200, and the band control transistor 300.
[0124] When the voltage of the band control signal line CON1 becomes lower, the resistance component of the band control transistor 300 becomes larger. Therefore, the band of the band control transistor 300 becomes narrower, and the frequency range of the feedback signal becomes narrower. When the voltage of the band control signal line CON1 becomes an even lower low level, the band control transistor 300 turns off. As a result, no feedback path is formed.
[0125] The other of the source and drain of the selection transistor 500 is connected to a signal read line 7. The signal read line 7 corresponds to the output signal line 314 described above. The gate of the selection transistor 500 is controlled by a selection control signal line CON7. The state of the selection transistor 500 is determined by the voltage of the selection control signal line CON7. For example, when the voltage of the selection control signal line CON7 is at a high level, the selection transistor 500 is turned on. As a result, the amplification transistor 200 and the signal read line 7 are electrically connected. The selection control When the voltage of the control signal line CON7 is at a low level, the selection transistor 500 is turned off, so that the amplification transistor 200 and the signal read line 7 are electrically isolated from each other.
[0126] A switching circuit 20 is connected to the other of the source and drain of the amplifying transistor 200. Specifically, the other of the source and drain of the amplifying transistor 200 is connected to a voltage source VA1 via a switch element 11. The other of the source and drain of the amplifying transistor 200 is also connected to a voltage source VA2 via a switch element 12. The switching circuit 20 is controlled by control signals V1 and V2 to switch the voltage applied to the other of the source and drain of the amplifying transistor 200 to a voltage Va1 or a voltage Va2. The voltage Va1 of the voltage source VA1 is, for example, a ground voltage GND. The voltage Va2 of the voltage source VA2 is, for example, a VDD. The switching circuit 20 may be provided for each pixel, or may be shared by multiple pixels in order to reduce the number of elements per pixel.
[0127] A constant current source 6 is connected to the signal readout line 7. When the selection transistor 500 is on, a source follower circuit is formed by the selection transistor 500, the amplification transistor 200, and the constant current source 6. A signal corresponding to the signal charge accumulated in the charge accumulation region FD is output to the signal readout line 7 and read out to the outside. The constant current source 6 may be provided for each pixel, or may be shared by multiple pixels in order to reduce the number of elements per pixel.
[0128] 16 is a schematic diagram showing another circuit configuration of the detection circuit 312. As shown in FIG. 16, one of the substrate connection parts CON may be located between the amplifier 2 and the output selection part 5.
[0129] (Operation of the imaging device 100) Next, the operation flow of the detection circuit 312 will be described with reference to FIG.
[0130] 17 is a timing chart showing an example of the operation of the detection circuit 312. The horizontal axis of each graph indicates time, and on the vertical axis, from the top, CON1 indicates the voltage of the band control signal line CON1, CON7 indicates the voltage of the selection control signal line CON7, and VS indicates the voltage of the other of the source and drain of the amplification transistor 200.
[0131] (Reset period) At time t1, the voltage of the selection control signal line CON7 is at a low level. Therefore, the selection transistor 500 is in an off state, and the amplification transistor 200 and the signal read line 7 are electrically isolated. Also, at time t1, the voltage of the band control signal line CON1 is set to a high level, and the band control transistor 300 is set to an on state. Also, at time t1, the switch element 11 of the switching circuit 20 is in an on state, and a voltage Va1 (for example, GND) is applied to the other of the source and drain of the amplification transistor 200. As a result, the voltage of the charge storage region FD becomes equal to the reset voltage VRST.
[0132] Here, the voltage of the band control signal line CON1 is set so that the operating band of the band control transistor 300 becomes the first band, which is a wide band. This allows the voltage of the charge storage region FD to be set to the reset voltage VRST quickly. The first band means the operating band of the band control transistor 300 corresponding to a high-level gate voltage.
[0133] In this embodiment, the reset period is provided in order to quickly set the charge storage region FD to the reset voltage. However, if there is sufficient driving time, the charge storage region FD may be set to the reset voltage within the noise suppression period described later without providing this period.
[0134] (Noise suppression period) Next, during the period from time t2 to time t4, the voltage of the band control signal line CON1 is set to a voltage between high and low levels, for example, an intermediate voltage. In this case, the operating band of the band control transistor 300 becomes a second band narrower than the first band. The second band refers to the operating band of the band control transistor 300 when the gate voltage is an intermediate voltage.
[0135] By making the second band sufficiently narrower than the operating band of the amplifying transistor 200, the noise suppression effect is increased. However, on the other hand, the time from time t2 to time t4 becomes longer. Note that even if the second band is wider than the operating band of the amplifying transistor 200, the noise suppression effect can be obtained. Therefore, the designer can arbitrarily design the second band depending on the allowable time from time t2 to time t4. In the following, the second band will be described as being sufficiently narrower than the operating band of the amplifying transistor 200.
[0136] When the second band is narrower than the operating band of the amplifying transistor 200, the thermal noise generated in the band control transistor 300 is suppressed by the feedback circuit. If the amplification factor of the amplifier 2 is -A times, the thermal noise is suppressed to 1 / (1+A)1 / 2 times.
[0137] The switching circuit 20 is set so that the other of the source and drain of the amplifying transistor 200 is connected to GND. A designer can design the amplification factor of the amplifier 2 so as to be an optimum value for the circuit system. Typically, A is greater than 1 and can be set to a value of several tens to several hundreds.
[0138] Next, at time t4, the voltage of the band control signal line CON1 is set to a low level to turn off the band control transistor 300. When the band control transistor 300 is turned off, the kTC noise remaining in the charge storage region FD is also suppressed to 1 / (1+A)1 / 2 times compared to the case without feedback.
[0139] (Exposure / Readout Period) At time t5, the voltage of the selection control signal line CON7 is set to a high level to turn on the selection transistor 500. Also, the switching circuit 20 is controlled so that the voltage of the other of the source and drain of the amplification transistor 200 becomes Va2 (for example, VDD). That is, the switch element 12 is turned on, and the voltage Va2 is applied to the other of the source and drain of the amplification transistor 200. In this state, the amplification transistor 200 and the constant current source 6 form a source follower circuit. Then, the signal read line 7 becomes a voltage according to the signal charge accumulated in the charge accumulation region FD. At that time, the amplification factor of the source floor circuit is about 1.
[0140] At time t5, the voltage of the charge accumulation region FD changes by an amount corresponding to the signal charge generated in the photoelectric conversion unit 4112A during the period from time t4 to time t5 with respect to the reset voltage VRST as a reference. The voltage of the charge accumulation region FD is amplified by the amplifier 2 with an amplification factor of about 1 and output to the signal readout line 7.
[0141] The random noise means output fluctuation when the signal charge generated in the photoelectric conversion unit 4112A is 0, that is, kTC noise. The kTC noise is suppressed to 1 / (1+A)1 / 2 times during the noise suppression period, and is further output to the signal readout line 7 with an amplification factor of about 1 times during the exposure / readout period. Therefore, according to this embodiment, good image data with suppressed random noise can be obtained.
[0142] In addition, according to this embodiment, it is also possible to perform CDS in order to cancel the variations in the peripheral circuits. Specifically, the signal of the charge storage region FD is increased by a source follower circuit. After the signal voltage is read out, the above-mentioned reset operation is performed again. After the reset operation is completed, the source follower circuit performs a read operation again before the photoelectric conversion unit 4112A detects light. This makes it possible to read out the reset voltage VRST. CDS can be performed by taking the difference between the signal voltage of the charge accumulation region FD and the reset voltage.
[0143] In addition, in this embodiment, during the exposure period, the signal from the charge storage region FD is read out by a source follower circuit, so the amplification factor is about 1. However, this is not limited to this, and the designer may change the amplification factor depending on the signal-to-noise ratio S / N or circuit range required for the system.
[0144] According to this embodiment, feedback for noise cancellation is performed within each of the multiple pixels 311. This makes it possible to perform high-speed noise cancellation without being affected by the time constant of the readout line 7.
[0145] Finally, another method of controlling the bandwidth control signal line CON1 will be described with reference to FIG.
[0146] 18 is a timing chart showing another example of the operation of the detection circuit 312. As shown in the figure, the band control signal CON1 may be controlled so that the band control transistor 300 gradually changes from the on state to the off state across the threshold voltage of the band control transistor 300. In this specification, such reset control is called "taper reset".
[0147] This makes it possible to effectively suppress noise occurring in all pixels even if there is variation in the threshold voltage of the band control transistor 300 among the multiple pixels 311 constituting the imaging device 100. Also, the variation range of the voltage applied to the band control signal line CON1 in the taper reset may be limited to the range of variation in the threshold voltage of the band control transistor 300 of each pixel. This makes it possible to shorten the time required for the taper reset and perform noise suppression at high speed.
[0148] In this embodiment, the photoelectric conversion unit 4112A is disposed on the first substrate 101, and the constant current source circuit 330 and the like are provided on the second substrate 102. The connection between the first substrate 101 and the second substrate 102 may be connected at the substrate connection portion CON as shown in FIG. 15 or FIG. 16. In FIG. 15, the selection transistor 500 is disposed on the first substrate 101, and in FIG. 16, the selection transistor 500 is disposed on the second substrate 102. The selection transistor 500 may be provided on both substrates. In addition, the selection transistor 500 makes it possible to share the constant current source circuit 330 and the substrate connection portion CON for each pixel, and by providing the selection transistor 500 on both substrates, it is also possible to change the number of shared transistors in each substrate.
[0149] The key point of the present application is related to the connection points when first substrate 101 and second substrate 102 are laminated. The key point of the present application is that first substrate 101 and second substrate 102 are connected by substrate connection part CON with bias signal line 313 and output signal line 314. The effect is achieved by separating the substrate on which constant current source 433 for supplying current to detection circuit 312 and the voltage source are arranged from the substrate on which detection circuit 312 is arranged.
[0150] The potential of the bias signal line 313 may be the power supply voltage. However, this is particularly effective in cases where the voltage applied to the bias signal line 313 varies with time, as in the first embodiment. In the first embodiment, the detection circuit 312 has a reconfigurable configuration that operates as a common source circuit during feedback reset in FIG. 5B and operates as a source follower circuit during signal readout in FIG. 5A. A constant current source provided on the second substrate 102 controls the gain of the detection circuit 312 provided in the pixel.
[0151] Moreover, the constant current sources 433 and 434 shown in Figures 5A and 5B are generally realized by PMOS transistors and NMOS transistors, respectively. By disposing such transistors of different polarities on the second substrate 102 and directly under the pixels provided on the first substrate 101, the current supply path can be shortened. In this way, this stacked configuration is effective in disposing the constant current sources as close to the pixels as possible and disposing the constant current sources at a high density equivalent to the density of the pixels in the pixel array 310. Of course, the same can be said about the constant voltage sources described above.
[0152] In the first embodiment shown in FIGS. 5A and 5B, the direction of the current flowing through the amplifier transistor 4121A in the pixel differs between signal readout in FIG. 5A and feedback reset in FIG. 5B.
[0153] The detection circuit 312 may operate as a common source circuit not only during the reset operation period, but also during readout. That is, the imaging device 100 may have two imaging modes. For example, the first imaging mode may be a normal mode in which the detection circuit 312 operates as a common source circuit during the reset operation and operates as a source follower circuit during readout. The second imaging mode may be a high sensitivity mode in which the detection circuit 312 operates as a common source circuit during both the reset operation and the readout operation. When the detection circuit 312 operates as a common source circuit during the readout operation, the readout gain can be increased. For example, the second imaging mode, which can increase the readout gain, is desirable for applications such as signal readout in the dark and detection of single photons.
[0154] Second Embodiment The structure, function and driving method of the imaging device 100 according to this embodiment will be described with reference to Fig. 19 to Fig. 33. The imaging device 100 according to this embodiment differs from the first embodiment in that it includes a detection circuit 312 including four transistors.
[0155] (Structure of imaging device 100) The imaging device 100 according to this embodiment includes a plurality of pixels 311 arranged two-dimensionally and peripheral circuits, as in the first embodiment. The pixels 311 are connected to the peripheral circuits via various control lines.
[0156] 19 illustrates a schematic diagram of an exemplary circuit configuration of a pixel 311 of the imaging device 100 according to this embodiment. The pixel 311 includes a photoelectric conversion unit 4112A and a detection circuit 312. The detection circuit 312 includes an amplifier 2, a band control unit 3', a charge accumulation region FD, and an output selection unit 5. The detection circuit 312 reads out a signal charge generated by the photoelectric conversion unit 4112A.
[0157] The charge accumulation region FD is connected to the photoelectric conversion unit 4112A by a wiring layer. The charge accumulation region FD is further connected to the input of the amplifier 2. The amplifier 2 amplifies a signal corresponding to the signal charge accumulated in the charge accumulation region FD, and outputs the amplified signal to the band control unit 3′ and the output selection unit 5.
[0158] The band control section 3' includes a reset circuit 4A that resets the charge accumulation region FD, and a band control circuit 3B. At least three different voltages are supplied to the band control circuit 3B from a voltage control circuit 99. By supplying such voltages, the band control circuit 3B has a band control function. The band control circuit 3B applies band limitation to the output signal of the amplifier 2 and outputs it to the charge accumulation region FD. The signal charge accumulated in the charge accumulation region FD is reset by the reset circuit 4A. The signal read out from the charge accumulation region FD is amplified by the amplifier 2. The amplified signal is band-limited by the band control circuit 3B, and then fed back to the charge accumulation region FD.
[0159] The output selection unit 5 is connected to a signal readout line 7. The signal readout line 7 is shared by at least two pixels. The signal amplified by the amplifier 2 is output to the signal readout line 7 via the output selection unit 5.
[0160] 20 and 21 are schematic diagrams showing an example of the circuit configuration of the detection circuit 312 B. The feedback circuit 30 ′ negatively feeds back the signal from the photoelectric conversion unit 4112 A to the charge accumulation region FD via the amplification transistor 200 .
[0161] The reset circuit 4A of the band control section 3' includes a reset transistor 400. The band control circuit 3B includes a band control transistor 301, a capacitance element 9, and a capacitance element 10. In this specification, a "capacitance element" means a structure in which a dielectric such as an insulating film is sandwiched between electrodes. In addition, an "electrode" is not limited to an electrode made of metal, but is interpreted to broadly include a polysilicon layer and the like. The electrode may be a part of a semiconductor substrate. The capacitance element 9 and the capacitance element 10 may be, for example, a MIM (Metal Insulator Metal) capacitance or a MIS (Metal Insulator Semiconductor) capacitance.
[0162] The amplifier 2 includes an amplifying transistor 200 and a switching circuit 20. The switching circuit 20 includes a switch element 11 and a switch element 12. The output selection section 5 includes a selection transistor 500. Hereinafter, the electrical connection relationship of the detection circuit 312 will be described.
[0163] The gate of the amplifying transistor 200 is connected to the charge storage region FD. One of the source and drain of the amplifying transistor 200 is connected to one of the source and drain of the band control transistor 301. One of the source and drain of the amplifying transistor 200 is also connected to one of the source and drain of the selection transistor 500. The other of the source and drain of the band control transistor 301 is connected to one end of the capacitance element 9. A reference voltage VR1 is applied to the other end of the capacitance element 9. As a result, the band control transistor 301 and the capacitance element 9 form an RC filter circuit.
[0164] The other of the source and drain of the band control transistor 301 is also connected to one end of the capacitance element 10. The other end of the capacitance element 10 is connected to the charge storage region FD. In this specification, a node formed between the band control transistor 301, the capacitance element 9, and the capacitance element 10 is referred to as "RD".
[0165] The gate of the band control transistor 301 is connected to a band control signal line CON3. The state of the band control transistor 301 is determined by the voltage of the band control signal line CON3. For example, when the voltage of the band control signal line CON3 is at a high level, the band control transistor 301 is turned on. At this time, a feedback path (i.e., a feedback circuit 30′) is formed by the charge storage region FD, the amplifying transistor 200, the band control transistor 301, and the capacitive element 10.
[0166] When the voltage of the band control signal line CON3 becomes lower, the resistance component of the band control transistor 301 becomes larger, so that the band of the band control transistor 301 becomes narrower, and the frequency range of the feedback signal becomes narrower.
[0167] When the feedback path is formed, the signal output from the band control transistor 301 is attenuated by the attenuation circuit formed by the capacitive element 10 and the parasitic capacitance of the charge storage region FD, and is fed back to the charge storage region FD. If the amount is Cfd, the attenuation rate B is expressed as Cc / (Cc+Cfd).
[0168] When the voltage of the band control signal line CON3 further drops to a low level, the band control transistor 301 turns off and no feedback path is formed.
[0169] The charge storage region FD is further connected to one of the source and drain of the reset transistor 400. A reference voltage VR2 is applied to the other of the source and drain of the reset transistor 400. The gate of the reset transistor 400 is connected to a reset control signal line CON2, and the state of the reset transistor 400 is determined by the voltage of the reset control signal line CON2. For example, when the voltage of the reset control signal line CON2 is at a high level, the reset transistor 400 is turned on, and the charge storage region FD is reset to the reference voltage VR2.
[0170] The other of the source and drain of the selection transistor 500 is connected to a signal read line 7. The gate of the selection transistor 500 is connected to a selection control signal line CON7, and the state of the selection transistor 500 is determined by the voltage of the selection control signal line CON7. For example, when the voltage of the selection control signal line CON7 is at a high level, the selection transistor 500 is turned on, and the amplification transistor 200 and the signal read line 7 are electrically connected. When the voltage of the selection control signal line CON7 is at a low level, the selection transistor 500 is turned off. As a result, the amplification transistor 200 and the signal read line 7 are electrically separated.
[0171] A switching circuit 20 is connected to the other of the source and drain of the amplifying transistor 200. Specifically, the other of the source and drain of the amplifying transistor 200 is connected to a voltage source VA1 via a switch element 11. The other of the source and drain of the amplifying transistor 200 is also connected to a voltage source VA2 via a switch element 12. The switching circuit 20 is controlled by control signals V1 and V2 to switch the voltage applied to the other of the source and drain of the amplifying transistor 200 to a voltage Va1 or a voltage Va2. The voltage Va1 of the voltage source VA1 is, for example, GND. The voltage Va2 of the voltage source VA2 is, for example, VDD. The switching circuit 20 may be provided for each pixel, or may be shared by multiple pixels in order to reduce the number of elements per pixel.
[0172] A constant current source 6 is connected to the signal readout line 7. When the selection transistor 500 is on, a source follower circuit is formed by the selection transistor 500, the amplification transistor 200, and the constant current source 6. A signal corresponding to the signal charge accumulated in the charge accumulation region FD is output to the signal readout line 7 and read out to the outside. The constant current source 6 may be provided for each pixel, or may be shared by multiple pixels in order to reduce the number of elements per pixel.
[0173] Next, the operation flow of the detection circuit 312 will be described with reference to FIG.
[0174] 22 is a timing chart showing an example of the operation of the detection circuit 312. The horizontal axis of each graph indicates time, and on the vertical axis, from the top, CON2 indicates the voltage of the reset control signal CON2. CON3 indicates the voltage of the band control signal line CON3. CON7 indicates the voltage of the selection control signal line CON7. VS indicates the voltage of the other of the source and drain of the amplification transistor 200.
[0175] (Reset period) At time t11, the voltage of the selection control signal line CON7 is at a low level. Therefore, the selection transistor 500 is in an off state, and the amplification transistor 200 and the signal read line 7 are electrically isolated from each other. Also, at time t11, the voltage of the band control signal line CON3 is The voltage is set to a high level to turn on the band control transistor 301. Also, at time t11, the switch element 11 of the switching circuit 20 is in an on state, and a voltage Va1 (for example, GND) is applied to the other of the source and drain of the amplifying transistor 200. Furthermore, at time t11, the voltage of the reset control signal line CON2 is set to a high level to turn on the reset transistor 400, thereby resetting the charge storage region FD, and the voltage of the charge storage region FD becomes the reference voltage VR2.
[0176] At time t12, the voltage of the reset control signal line CON2 is set to low level, turning off the reset transistor 400. At this time, the detection circuit 312 forms a feedback circuit with an amplification factor of -A×B times. Therefore, the kTC noise in the charge storage region FD that occurs when the reset transistor 400 is turned off is suppressed to 1 / (1+A×B) times. By setting the voltage of the band control signal line CON3 to high level so that the operating band of the band control transistor 301 becomes a wide band, the kTC noise can be suppressed at high speed.
[0177] (Noise suppression period) In the period from time t13 to time t15, the voltage of the band control signal line CON3 is set between the high level and the low level, for example, to an intermediate voltage, in which case the operating band of the band control transistor 301 becomes a second band narrower than the first band.
[0178] By making the second band sufficiently narrower than the operating band of the amplifying transistor 200, the noise suppression effect is increased, but the time from t13 to t15 is also lengthened. Note that even if the second band is wider than the operating band of the amplifying transistor 200, the noise suppression effect can be obtained. The designer can design the second band as desired depending on the allowable time from time t13 to time t15. In the following description, it is assumed that the second band is sufficiently narrower than the operating band of the amplifying transistor 200.
[0179] In a state where the second band is narrower than the operating band of the amplifying transistor 200, the thermal noise generated in the band control transistor 301 is suppressed to 1 / (1+A×B)1 / 2 times by the feedback circuit 30'. In this state, when the voltage of the band control signal line CON3 is set to a low level at time t15 to turn off the band control transistor 301, the kTC noise remaining in the charge storage region FD at the time of turning off the transistor is equal to the sum of the squares of the kTC noise caused by the reset transistor 400 and the kTC noise caused by the band control transistor 301.
[0180] If the capacitance of the capacitive element 9 is Cs, the kTC noise of the band control transistor 301 generated in a state where there is no suppression by feedback is (Cfd / Cs)1 / 2 times the kTC noise of the reset transistor 400 generated in a state where there is no suppression by feedback. Taking this into consideration, compared to the case where there is no feedback, the kTC noise in the case where there is feedback is suppressed to {1+(1+A×B)×Cfd / Cs}1 / 2 / (1+A×B) times.
[0181] (Exposure / Readout period) At time t16, the voltage of the selection control signal line CON7 is set to a high level, the selection transistor 500 is turned on, and the switching circuit 20 is controlled so that the voltage of the other of the source and drain of the amplification transistor 200 becomes Va2 (for example, VDD). In this state, the amplification transistor 200 and the constant current source 6 form a source follower circuit. The signal read line 7 becomes a voltage according to the signal charge accumulated in the charge accumulation region FD. At that time, the amplification factor of the source floor circuit is about 1.
[0182] At time t16, the voltage of the charge storage region FD is reset to a reset voltage (VR2) corresponding to the signal charge generated in the photoelectric conversion unit 4112A during the period from time t15 to t16. The voltage of the charge storage region FD is amplified by an amplifier 2 with an amplification factor of about 1 and output to a signal readout line 7.
[0183] The random noise means the output fluctuation when the signal charge generated in the photoelectric conversion unit 4112A is 0, that is, kTC noise. The kTC noise is suppressed by {1+(1+A×B)×Cfd / Cs}1 / 2 / (1+A×B) times during the noise suppression period, and is further output to the signal readout line 7 with an amplification factor of about 1 times during the exposure / readout period. As a result, good image data with suppressed random noise can be obtained.
[0184] It is desirable that the capacitance Cs of the capacitance element 9 is larger than the capacitance Cc of the capacitance element 10. In this embodiment, random noise can be suppressed by increasing Cs as much as the area allows. Typically, random noise is reduced by increasing the capacitance of the capacitance element 9. However, when the charge signal is converted into a voltage signal in the charge storage region FD, the signal level becomes small, and as a result, the S / N ratio is not improved. However, according to this embodiment, the charge storage regions FD and RD are separated by the capacitance element 10, so that even if the capacitance of the capacitance element 9 is increased, the signal level is unlikely to decrease. As a result, only random noise is suppressed, and the effect of improving the S / N ratio is obtained.
[0185] According to this embodiment, similarly to the first embodiment, it is also possible to perform CDS in order to cancel the variations in the peripheral circuits. Specifically, after the signal voltage of the charge storage region FD is read by the source follower circuit, the above-mentioned reset operation is performed again. After the reset operation is completed, the source follower circuit performs the read operation again before the photoelectric conversion unit 4112A detects light. This makes it possible to read out the reset voltage VRST. CDS can be performed by taking the difference between the signal voltage of the charge storage region FD and the reset voltage.
[0186] In addition, in this embodiment, during the exposure period, the signal from the charge storage region FD is read out by a source follower circuit, so the amplification factor is about 1. However, this is not limited to this, and the designer may change the amplification factor depending on the S / N or circuit range required for the system.
[0187] According to this embodiment, feedback for noise cancellation is performed within each of the multiple pixels 311. This allows high-speed noise cancellation without being affected by the time constant of the readout line 7. Furthermore, by increasing the capacitance of the capacitive element disposed within the pixel 311, a greater noise suppression effect can be obtained.
[0188] Below, modifications of the configuration and operation of the detection circuit 312 according to this embodiment will be described.
[0189] 23 to 32 are schematic diagrams showing another example of the circuit configuration of the detection circuit 312. The detection circuit 312 shown in FIG. 23 to FIG. 26 is different from the detection circuit 312 shown in FIG. 19 and FIG. 20 in that the voltage of one of the source and drain of the amplification transistor 200 (i.e., the output voltage of the amplifier 2) is applied to the reset transistor 400 instead of the reference voltage VR2. The reset transistor 400 negatively feeds back the signal of the photoelectric conversion unit 4112A to the charge storage region FD via the amplification transistor 200. In this specification, such a transistor may be called a "negative feedback transistor." With such a configuration, the change in the voltage of the charge storage region FD before and after turning off the reset transistor 400 can be reduced, enabling faster noise suppression.
[0190] Furthermore, as shown in Figs. 27 to 32, a constant current source 8 may be provided. With such a configuration, the operating band of the amplifying transistor 200 can be widened. It is also possible to widen the band of the band control transistor 301. Therefore, with the band of the band control transistor 301 being wider, random noise can be suppressed at higher speed.
[0191] Finally, another method of controlling the band control signal line CON3 will be described with reference to FIG.
[0192] 33 is a timing chart showing another example of the operation of the detection circuit 312. As shown in the figure, a taper reset may be applied as in the first embodiment. That is, the band control signal line CON3 may be controlled so that the band control transistor 301 gradually changes from an on state to an off state across its threshold voltage.
[0193] This makes it possible to effectively suppress noise occurring in all pixels even if there is variation in the threshold voltage of the band control transistor 301 among the multiple pixels 311 constituting the imaging device 100. Also, the variation range of the voltage applied to the band control signal line CON3 in the taper reset may be limited to the range of variation in the threshold voltage of the band control transistor 301 of each pixel. This makes it possible to shorten the time required for the taper reset and perform noise suppression at high speed.
[0194] (Third embodiment) The structure, function and driving method of the imaging device 100 according to this embodiment will be described with reference to Fig. 34 to Fig. 38. The imaging device 100 according to this embodiment differs from the imaging device 100 according to the second embodiment in that the output selection section 5C of the detection circuit 312 includes a PMOS transistor as a selection transistor and in that the output selection section 5C is connected to a switching circuit 40. The following description will focus on the differences from the second embodiment.
[0195] 34 illustrates an exemplary circuit configuration of a pixel 311 of the imaging device 100 according to this embodiment. The pixel 311 includes a photoelectric conversion unit 4112A and a detection circuit 312. The detection circuit 312 includes an amplifier 2, a band control unit 3, a charge accumulation region FD, and an output selection unit 5C. The output selection unit 5C is connected to a signal readout line 7.
[0196] The output selection unit 5C is connected to a signal readout line 7 that is shared by at least two pixels. The output selection unit 5C has a function of outputting a signal amplified by the amplifier 2 to the signal readout line 7, and a function of supplying a current to the amplifier 2. These functions can be switched between each other.
[0197] FIG. 35A shows a schematic circuit configuration of the detection circuit 312. The feedback circuit 30 negatively feeds back the signal of the photoelectric conversion unit 4112A to the charge accumulation region FD via the amplification transistor 200. One of the source and drain of the selection transistor 502 is connected to one of the source and drain of the amplification transistor 200. The other of the source and drain of the selection transistor 502 is connected to the signal read line 7. In this embodiment, the selection transistor 502 has a polarity that is inverted from the polarity of the amplification transistor 200. The amplification transistor 200 is an NMOS transistor, and the selection transistor 502 is a PMOS transistor.
[0198] The gate of the selection transistor 502 is connected to a selection control signal line CON8. The state of the selection transistor 502 is determined by the voltage of the selection control signal line CON8. For example, when the voltage of the selection control signal line CON8 is at a low level, the selection transistor 502 is turned on, and the amplification transistor 200 and the signal read line 7 are electrically connected. When the voltage of the selection control signal line CON8 is at a high level, the selection transistor 502 is turned off, and the amplification transistor 200 and the signal read line 7 are electrically separated.
[0199] When the voltage of the selection control signal line CON8 is between a low level and a high level, for example, at an intermediate voltage, the selection transistor 502 operates as a current source and supplies a current to the amplification transistor 200. The amount of the current is determined by the voltage of the selection control signal line CON8. The designer can design the detection circuit 312 to obtain a desired amount of current.
[0200] The switching circuit 40 is connected to the signal readout line 7. The switching circuit 40 includes a switch element 13, a switch element 14, voltage sources VB1 and VB2, and a constant current source 6. One terminal of the constant current source 6 is connected to the signal readout line 7 via the switch element 13. In addition, the voltage source VB2 is connected to the signal readout line 7 via the switch element 14. The other terminal of the constant current source 6 is connected to the voltage source VB1.
[0201] Control signals V3 and V4 can be used to switch between connecting the voltage source VB2 or the constant current source 6 (voltage source VB1) to the signal read line 7. For example, the voltage Vb1 of the voltage source VB1 is GND, and the voltage Vb2 of the voltage source VB2 is VDD.
[0202] When the voltage source VB2 is connected to the signal read line 7, if the voltage of the selection control signal line CON8 is between a low level and a high level, for example, an intermediate voltage, the selection transistor 502 operates as a current source. In this case, the selection transistor 502 and the amplification transistor 200 form an inverting amplifier circuit.
[0203] When the constant current source 6 is connected to the signal read line 7, if the voltage of the selection control signal line CON8 is at a low level, the amplifying transistor 200 and the constant current source 6 form a source follower circuit. In this case, the signal of the charge storage region FD is output to the signal read line 7.
[0204] In this embodiment, the transistors constituting the detection circuit 312 are NMOS transistors except for the selection transistor 502, but the polarity may be reversed. That is, the selection transistor 502 may be an NMOS transistor, and the other transistors may be PMOS transistors. Furthermore, all of the transistors in the detection circuit 312 may be NMOS transistors or PMOS transistors.
[0205] Please refer to Fig. 35B. Fig. 35B shows a modified example of the configuration shown in Fig. 35A described above. In this modified example, the switching circuit 40 has constant current sources 6A and 6B. Also, the output selection section 5C has a selection transistor 503. The polarity of the selection transistor 503 is the same as that of the amplification transistor 200 and the like. In other words, the selection transistor 503 is an NMOS transistor.
[0206] The gate of the selection transistor 503 is connected to a selection control signal line CON9. The state of the selection transistor 503 is determined by the voltage of the selection control signal line CON9. For example, when the voltage of the selection control signal line CON9 is at a high level, the selection transistor 503 is turned on, and the amplification transistor 200 and the signal read line 7 are electrically connected. When the voltage of the selection control signal line CON9 is at a low level, the selection transistor 503 is turned off, and the amplification transistor 200 and the signal read line 7 are electrically separated.
[0207] 35A, the voltage of the selection control signal line CON8 is set between a low level and a high level, for example, an intermediate voltage, to operate the selection transistor 502 as a current source. In contrast, in this modification, a current is supplied from the constant current source 6B to the amplification transistor 200 by turning on the switch element 14 and the selection transistor 503.
[0208] Next, with reference to FIG. 36, the operation flow of the detection circuit 312 in FIG. 35A will be described.
[0209] 36 is a timing chart showing an example of the operation of the detection circuit 312. The horizontal axis of each graph indicates time, and on the vertical axis, from top to bottom, CON2 indicates the voltage of the reset control signal CON2. CON3 indicates the voltage of the band control signal line CON3. CON8 indicates the voltage of the selection control signal line CON8. VS indicates the voltage of the other of the source and drain of the amplification transistor 200, that is, the voltage of the one of the source and drain of the amplification transistor 200 that is connected to the switching circuit 20.
[0210] (Reset period) At time t21, the voltage of the selection control line CON8 is set to a voltage between a low level and a high level, for example, an intermediate voltage. In addition, the switching circuit 40 is controlled to connect the voltage source VB2 to the signal read line 7. In addition, the voltage of the band control signal line CON3 is set to a high level to turn on the band control transistor 301. In addition, at time t21, the other of the source and drain of the amplification transistor 200 is connected to a voltage source VA1. The voltage Va1 of the voltage source VA1 is, for example, GND. In addition, at time t21, the voltage of the reset control signal line CON2 is set to a high level to turn on the reset transistor 400, thereby resetting the charge storage region FD. As a result, the voltage of the charge storage region FD becomes the reference voltage VR2.
[0211] At time t22, the voltage of the reset control signal line CON2 is set to low level to turn off the reset transistor 400. At this time, the detection circuit 312 forms a feedback loop with an amplification factor of -A×B. Therefore, the kTC noise of the charge storage region FD when the reset transistor 400 is turned off is suppressed to 1 / (1+A×B) times. The voltage of the band control signal line CON3 is set so that the operating band of the band control transistor 301 becomes the first band, which is a wide band. This allows noise to be suppressed at high speed.
[0212] (Noise suppression period) In the period from time t23 to time t25, the voltage of the band control signal line CON3 is set to a voltage between a high level and a low level, for example, an intermediate voltage, in which case the operating band of the band control transistor 301 becomes a second band narrower than the first band.
[0213] By making the second band sufficiently narrower than the operating band of the amplifying transistor 200, the noise suppression effect is increased, but the time from t23 to t25 is also lengthened. Note that the noise suppression effect can be obtained even if the second band is higher than the operating band of the amplifying transistor 200. Therefore, the designer can design the second band as desired depending on the allowable time from time t23 to time t25. Hereinafter, the second band will be treated as a band sufficiently narrower than the operating band of the amplifying transistor 200.
[0214] In a state in which the second band is narrower than the operating band of the amplifying transistor 200, the thermal noise generated in the band control transistor 301 is suppressed to 1 / (1+A×B)1 / 2 times by the feedback circuit 30. In this state, when the voltage of the band control signal control line CON3 is set to a low level at time t25 to turn off the band control transistor 301, the kTC noise remaining in the charge accumulation region FD when the transistor is turned off is equal to the sum of the squares of the kTC noise caused by the reset transistor 400 and the kTC noise caused by the band control transistor 301.
[0215] If the capacitance of the capacitive element 9 is Cs, the kTC noise of the band control transistor 301 that occurs in a state where there is no suppression by feedback is (Cfd / Cs) 1 / 2 times the kTC noise of the reset transistor 400 that occurs in a state where there is no suppression by feedback. Taking this into consideration, compared to the case where there is no feedback, the kTC noise when there is feedback is {1+(1 +A×B)×Cfd / Cs}1 / 2 / (1+A×B) times. At time t25, the voltage of the selection control signal line CON8 is set to a high level to turn off the selection transistor 502. This electrically isolates the amplification transistor 200 from the signal read line 7.
[0216] Note that a taper reset may be applied in the same manner as in the operation flow shown in Fig. 33 of the second embodiment. In other words, the band control signal line CON3 may be controlled so that the band control transistor 301 gradually changes from the on state to the off state across its threshold voltage from time t23 to t24.
[0217] This makes it possible to effectively suppress noise occurring in all pixels even if there is variation in the threshold voltage of the band control transistor 301 among the multiple pixels 311 constituting the imaging device 100. Also, the variation range of the voltage applied to the band control signal line CON3 in the taper reset may be limited to the range of variation in the threshold of the band control transistor 301 of each pixel. This makes it possible to shorten the time required for the taper reset and perform noise suppression at high speed.
[0218] (Exposure / Readout Period) At time t26, the voltage of the selection control signal line CON8 is set to a low level, the selection transistor 502 is turned on, and the switching circuit 20 is controlled so that the voltage of the other of the source and drain of the amplification transistor 200 becomes Va2 (for example, VDD). Also, the switching circuit 40 is controlled so that the constant current source 6 is connected to the signal read line 7. In this state, the amplification transistor 200 and the constant current source 6 form a source follower circuit. The signal read line 7 becomes a voltage according to the signal charge accumulated in the charge accumulation region FD. At that time, the amplification factor of the source floor circuit is about 1x.
[0219] At time t26, the voltage of the charge accumulation region FD changes by an amount corresponding to the signal charge generated in the photoelectric conversion unit 4112A during the period from time t25 to t26 with respect to the reset voltage (VR2). The voltage of the charge accumulation region FD is amplified by the amplifier 2 with an amplification factor of about 1 and output to the signal readout line 7.
[0220] The kTC noise is suppressed by a factor of {1+(1+A×B)×Cfd / Cs}1 / 2 / (1+A×B) during the noise suppression period, and is further output to the signal readout line 7 with an amplification factor of about 1 during the exposure / readout period. This makes it possible to obtain good image data with suppressed random noise.
[0221] In this embodiment, as in the second embodiment, random noise can be suppressed by increasing Cs as much as the area allows. Typically, random noise is reduced by increasing the capacitance of the capacitance element 9. However, since the signal level becomes small when the charge signal is converted into a voltage signal in the charge storage region FD, the S / N ratio is not improved as a result. However, according to this embodiment, since the charge storage regions FD and RD are separated by the capacitance element 10, signal degradation is unlikely to occur even if the capacitance of the capacitance element 9 is increased. As a result, only random noise is suppressed, and the effect of improving the S / N ratio is obtained.
[0222] Furthermore, according to this embodiment, similarly to the second embodiment, it is also possible to implement CDS in order to cancel variations in the peripheral circuits. Specifically, after the signal voltage of the charge storage region FD is read out by the source follower circuit, the above-mentioned reset operation is performed again. After the reset operation is completed, the source follower circuit performs a read operation again before the photoelectric conversion unit 4112A detects light. This makes it possible to read out the reset voltage VRST. By taking the difference between the signal voltage of the charge storage region FD and the reset voltage, CDS is performed. can be implemented.
[0223] In addition, feedback for noise cancellation is performed within each of the multiple pixels 311. This allows noise cancellation to be performed at high speed without being affected by the time constant of the readout line 7. Furthermore, by increasing the capacitance of the capacitive element disposed within the pixel 311, a greater noise suppression effect can be obtained.
[0224] In this embodiment, too, during the exposure period, the signal from the charge storage region FD is read out by a source follower circuit, so the amplification factor is about 1. However, this is not limited to this, and the designer may change the amplification factor depending on the S / N or circuit range required for the system.
[0225] Below, modifications of the configuration and operation of the detection circuit 312 according to this embodiment will be described.
[0226] 37A and 38A are schematic diagrams showing other circuit configurations of the detection circuit 312. The detection circuit 312 shown in FIG. 37A and FIG. 38A applies the voltage of one of the source and drain of the amplification transistor 200 (i.e., the output voltage of the amplifier 2) to the reset transistor 400 instead of the reference voltage VR2. In this respect, the detection circuit 312 shown in FIG. 37A and FIG. 38A is different from the detection circuit 312 shown in FIG. 35A. According to the configuration shown in FIG. 37A and FIG. 38A, the change in the voltage of the charge storage region FD before and after turning off the reset transistor 400 can be reduced, so that faster noise suppression is possible.
[0227] The configuration in which the switching circuit 40 includes the constant current source 6B, which has been described using FIG. 35B, can also be applied to the configurations shown in FIG. 37A and FIG. 38A. FIG. 37B shows a modified example of the configuration shown in FIG. 37A, and FIG. 38B shows a modified example of the configuration shown in FIG. 38A. In each modified example, the switching circuit 40 has a constant current source 6B in addition to the constant current source 6A. Also, the output selection unit 5C has a selection transistor 503 which is an NMOS transistor. In the configurations shown in FIG. 37A and FIG. 38A, as in the configuration shown in FIG. 35B, a current can be supplied from the constant current source 6B to the amplifying transistor 200 by turning on the switch element 14 and the selection transistor 503.
[0228] (Fourth embodiment) The structure, function and driving method of the imaging device 100 according to this embodiment will be described with reference to Fig. 39 to Fig. 43. The imaging device 100 according to this embodiment differs from the imaging devices 100 according to the first to third embodiments in the following points. First, the amplifier 2A in the detection circuit 312 has an amplification function and a band control function. Second, the amplifier 2A performs band control by returning its own output to the input, while applying negative feedback with its own amplification function (amplification factor: -A) and suppressing reset noise to 1 / (1+A)1 / 2.
[0229] 39 is a schematic diagram showing an exemplary circuit configuration of a pixel 311 in the imaging device 100 according to the present embodiment. The pixel 311 includes a photoelectric conversion unit 4112A and a detection circuit 312. The detection circuit 312 includes an amplifier 2A, a charge accumulation region FD, and an output selection unit 5B. The output selection unit 5B is connected to a constant current source 6 via a signal read line 7, and is driven by the constant current source 6. The amplifier 2A amplifies a signal corresponding to the charge accumulated in the charge accumulation region FD, and performs band control to suppress kTC noise generated in the charge accumulation region FD.
[0230] With reference to FIG. 40, the structure and function of the detection circuit 312 will be described in detail.
[0231] 40 shows a schematic diagram of an example of the circuit configuration of the detection circuit 312. The amplifier 2A includes an amplifying transistor 201, and the output selection section 5B includes an amplifying transistor 203 and a selection transistor 501. The electrical connections within the detection circuit 312 will be described below.
[0232] In the amplification transistor 201, the gate and one of the source and drain are connected to the charge storage region FD. The other of the source and drain is connected to the control signal line CON4. The amplification transistor 201 amplifies a signal voltage according to the signal charge stored in the charge storage region FD.
[0233] The gate of the amplification transistor 203 is connected to the charge storage region FD. One of the source and drain of the amplification transistor 203 is connected to a power supply voltage VDD or a reference voltage. The other of the source and drain of the amplification transistor 203 is connected to one of the source and drain of the selection transistor 501. The gate of the selection transistor 501 is connected to a selection control signal line CON7 that selects a read row. The other of the source and drain of the selection transistor 501 is connected to a constant current source 6 via a signal read line 7. In this way, the amplification transistor 203, the selection transistor 501, and the constant current source 6 form a source follower circuit. In addition, the selection transistor 501 selectively outputs the output of the amplification transistor 201 to the outside via the read line 7.
[0234] The gate of the amplifying transistor 201 and one of the source and drain of the amplifying transistor 201 correspond to the input and output of the amplifier 2A, respectively. In this manner, a feedback loop is formed by connecting the output of the amplifier 2A to the input. In this manner, the feedback circuit 30 negatively feeds back the signal of the photoelectric conversion unit 4112A to the charge accumulation region FD without passing through the amplifying transistor 203.
[0235] Next, the operation flow of the detection circuit 312 will be described with reference to FIG.
[0236] 41 is a timing chart showing an example of the operation of the detection circuit 312. The horizontal axis of each graph indicates time, and on the vertical axis, from top to bottom, CON4 indicates the voltage of the control signal line CON4. CON7 indicates the voltage of the selection control signal line CON7.
[0237] (Reset period) At time t28, the voltage of the selection control signal line CON7 is at a low level, and the selection transistor 501 is off. That is, the signal readout line 7 and the amplification transistor 203 are electrically disconnected. In this state, the voltage of the control signal line CON4 is set to the first reference voltage so that the charge storage region FD has a voltage close to the desired reset voltage VRST. At this time, the band of the amplification transistor 201 is set to the third band, which is a wide band. As a result, the charge storage region FD, the gate of the amplification transistor 201, and one of the source and drain of the amplification transistor 201 are set to the desired voltage at high speed. The third band means a band corresponding to the first reference voltage.
[0238] The closer the voltage of the charge storage region FD is to the reset voltage VRST, the shorter the time required for noise suppression will be, and the shorter the drive time will be. Therefore, it is desirable to set the voltage of the control signal line CON4 so that the voltage of the charge storage region FD is close to the reset voltage VRST. However, if there is sufficient drive time, the set value of the voltage of the control signal line CON4 is not limited to this.
[0239] (Noise suppression period) From time t29 to t31, the selection control signal line CON7 remains at a low level. The selection transistor 501 is in an off state. That is, the signal readout line 7 and the amplification transistor 203 remain in an electrically disconnected state. In this state, the voltage of the control signal line CON4 is set to the second reference voltage. This causes the amplification transistor 201 to gradually change from on to off. At that time, kTC noise occurs in the amplification transistor 201. This kTC noise depends on the capacitance Cfd parasitic to the charge storage region FD to which one of the source and drain of the amplification transistor 201 is connected. Therefore, this noise is suppressed by using a feedback loop by the amplification transistor 201.
[0240] When the second reference voltage is set to a voltage at which the amplifier transistor 201 is abruptly switched from on to off, the band of the generated reset noise becomes wide, up to several THz. Therefore, in the feedback loop of the amplifier 2A, it becomes difficult to suppress high-frequency noise exceeding the band of the amplifier 2A. Therefore, the second reference voltage is set so that the band of the amplifier transistor 201 becomes a fourth band narrower than the third band from time t29 to t31. The fourth band means a band corresponding to the second reference voltage. This makes it possible to limit the band of the amplifier transistor 201 to within the band of the amplifier 2A formed by its own feedback loop. Furthermore, the reset noise generated in the amplifier transistor 201 can be efficiently suppressed over the entire band.
[0241] After the noise is sufficiently suppressed, at time t31, the voltage of the control signal line CON4 is changed to a fourth reference voltage at which the amplification transistor 201 is completely turned off. This cuts off the feedback loop of the amplification transistor 201, and the voltage of the charge storage region FD becomes stable with noise suppressed.
[0242] In addition, the taper reset described with reference to FIG. 18 and FIG. 33 may be applied in the noise suppression period of this embodiment. FIG. 42 is a timing chart showing an example of the operation of the detection circuit 312 when the taper reset is applied. As shown in the figure, during the period from time t29 to t30, the voltage of the control signal line CON4 may be gradually changed within the range from the second reference voltage to the third reference voltage so that the amplification transistor 201 crosses the threshold voltage. As a result, the amplification transistor 201 gradually changes from the on state to the off state. In other words, during the period from time t29 to t30, the voltage of the control signal line CON4 is changed so as to gradually change from the fourth band to the fifth band. The fifth band means a band corresponding to the third reference voltage. The amplification transistor 201 is gradually changed from on to off while limiting the band of the amplification transistor 201 to within the band of the amplifier 2A formed by its own feedback loop. As a result, the noise generated in the charge storage region FD can be suppressed in the entire band. Here, the fourth band and the fifth band are narrower than the third band. Note that the second reference voltage and the third reference voltage may include a predetermined margin in consideration of manufacturing variations among the unit pixels.
[0243] (Exposure / Readout period) With noise in the charge accumulation region FD sufficiently suppressed and the voltage stable, charge is accumulated in the charge accumulation region FD for a desired period. Then, at time t32, the selection transistor 501 is turned on to electrically connect the amplification transistor 203 to the signal readout line 7. As a result, the amplification transistor 203 and the constant current source 6 form a source follower circuit. The signal charge accumulated in the charge accumulation region FD is amplified by the source follower circuit and output to the peripheral circuit (CDS circuit, A / D circuit, etc.) via the signal readout line 7.
[0244] Considering the noise suppression rate and the stability during readout, it is desirable to make the gain of the amplifier 2A as large as possible. For example, it is desirable to set the gain to be larger than the gain of the amplifier (i.e., source follower) in the output selection unit 5B.
[0245] According to this embodiment, as in the other embodiments, it is also possible to perform CDS in order to cancel the variations in the peripheral circuits. Specifically, at time t32, the signal voltage of the charge storage region FD is read by the source follower circuit, and then the above-mentioned reset operation is performed again. After the reset operation is completed, the source follower circuit performs the read operation of the reset voltage again before the photoelectric conversion unit 4112A detects light. This makes it possible to read out the reset voltage VRST. CDS can be performed by taking the difference between the signal voltage of the charge storage region FD and the reset voltage.
[0246] In addition, in this embodiment, during the exposure period, the signal from the charge storage region FD is read out by a source follower circuit, so the amplification factor is about 1. However, this is not limited to this, and the designer may change the amplification factor depending on the S / N or circuit range required for the system.
[0247] According to this embodiment, as in the first to third embodiments, feedback for noise cancellation is completed within the pixel 311. Therefore, noise cancellation can be performed at high speed without being affected by the time constant of the readout line 7. Furthermore, the amplifier 2A has both an amplification function and a band control function. This makes it possible to reduce the area of the pixel 311, that is, to accommodate narrow pixel cells. This is a notable feature of this embodiment. Even in an imaging device with a narrow pixel area, noise in the charge storage region FD can be effectively suppressed without increasing the number of components.
[0248] In this embodiment, during the reset period and the noise suppression period, the selection transistor 501 is turned off and the amplification transistor 203 is disconnected from the signal readout line 7. However, the present disclosure is not limited to this, and for example, a signal may be read out at a timing other than the above-mentioned timing. In that case, the selection transistor 501 may be kept in the on state. Furthermore, if there is sufficient driving time, the reset period may be omitted, and only the operation during the noise suppression period and the exposure / readout period may be performed without driving for shortening the convergence time for suppressing the reset noise. Furthermore, the signal readout line 7 and / or the constant current source 6 may be provided for each pixel 311, or may be shared among a plurality of pixels 311.
[0249] Hereinafter, a modified example of the configuration and operation of the detection circuit 312 according to this embodiment will be described.
[0250] What is noteworthy about the configuration of this modified example is that the amplifier 2A includes a capacitive element 19 and a capacitive element 21 in addition to the amplifying transistor 202.
[0251] The gate of the amplification transistor 202 is connected to the charge storage region FD. One of the source and drain of the amplification transistor 202 is connected to the control signal line CON6. The other of the source and drain of the amplification transistor 202 is connected to one end of the capacitance element 19 and one end of the capacitance element 21. The other end of the capacitance element 19 is connected to a third reference voltage VR3. The other end of the capacitance element 21 is connected to the charge storage region FD. In addition, a node RD is formed between the amplification transistor 202, the capacitance element 19, and the capacitance element 21.
[0252] According to the configuration of this modification, the gate of the amplifying transistor 202 and the other end of the capacitive element 21 correspond to the input and output of the amplifier 2A, respectively. A negative feedback loop is formed by connecting the output to the input. When the amplification factor of the amplifier 2A is set to -A times, the reset noise generated in the amplifying transistor 202 can be suppressed to 1 / (1+A)1 / 2.
[0253] The first advantage of this modification is that the capacitance C3 of the capacitive element 19 is reduced by the capacitance Cfd of the charge storage region FD. The second advantage is that by setting the capacitance C4 of the capacitive element 21 smaller than the capacitance of the charge accumulation region FD, the amount of noise in the charge accumulation region FD can be attenuated by a factor of C4 / (Cfd+C4) by dividing the capacitance C4 of the capacitive element 21 from the capacitance Cfd of the charge accumulation region FD.
[0254] The effect obtained by this modification will be specifically compared with the effect of the configuration shown in Fig. 40. In the configuration shown in Fig. 30, when the gain of the amplifier 2A is A times and the gain of the amplifying transistor 201 is A' times, the reset noise of the amplifying transistor 201 is suppressed to 1 / (1+A)1 / 2=1 / (1+A')1 / 2. On the other hand, in this modification, when the gain of the amplifier 2A is A and the gain of the amplifying transistor 202 is A', the reset noise of the amplifying transistor 202 is suppressed to 1 / (1+A)1 / 2=1 / [1+A'×{C4 / (Cfd+C4)}×(C3 / Cfd)]1 / 2. In this way, the reset noise can be significantly suppressed compared to the configuration shown in Fig. 40.
[0255] Regarding noise suppression, typically, increasing the capacitance C3 of the capacitance element 19 reduces random noise. However, when the signal charge is converted into a voltage signal in the charge storage region FD, the signal level becomes small, and as a result, the S / N ratio is not improved. However, according to this modification, the charge storage regions FD and RD are separated by the capacitance element 21, so the signal level does not decrease even if the capacitance is increased. Therefore, only random noise is suppressed, and the S / N ratio is improved.
[0256] Next, the readout operation of the imaging device 100 according to this modified example will be described, focusing on the differences from the driving method shown in FIG. 41 or FIG.
[0257] A control signal line CON6 is connected to the amplifier 2A. In principle, the same signal as the control signal line CON4 shown in FIG. 41 is input to the control signal line CON6. Instead of the control signal line CON6, a fifth reference voltage may be set as the third reference voltage VR3, and the voltage of the other of the source and drain of the amplifying transistor 202 may be changed. Alternatively, the RD node may be directly controlled. Here, the fifth reference voltage corresponds to the second reference voltage.
[0258] Also, a voltage that gradually changes from an ON state to an OFF state across the threshold voltage of the amplifying transistor 202 may be input to the control signal line CON6, as in CON4 in FIG. 42. That is, from time t29 to t30, the voltage of the control signal line CON6 may be gradually changed so as to cross the threshold voltage within the range from the second reference voltage to the third reference voltage. Alternatively, from time t29 to t30, instead of the control signal line CON6, a voltage that changes from the fifth reference voltage to the sixth reference voltage may be set as the third reference voltage VR3, and the voltage of the other of the source and drain of the amplifying transistor 202 may be changed. Alternatively, the RD node may be directly controlled. Here, the sixth reference voltage corresponds to the reference voltage.
[0259] According to this modification, due to the effects of the capacitive elements 19 and 21, it is possible to greatly improve the noise suppression rate compared to the configuration shown in FIG.
[0260] By placing two capacitors, the noise suppression effect is greater. However, the placement area also becomes larger. Since the suppression effect varies depending on the presence or absence of a capacitive element and the absolute value of the capacitance, designers can select and design any configuration and values.
[0261] Fifth embodiment The structure, function and driving method of the imaging device 100 according to this embodiment will be described with reference to Fig. 44 to Fig. 50. The imaging device 100 according to this embodiment differs from the imaging device 100 according to the fourth embodiment in that a switch unit 4B is added to the detection circuit 312 according to the fourth embodiment. The following description will focus on the differences from the fourth embodiment.
[0262] 44 and 45 show schematic diagrams of an exemplary circuit configuration of a pixel 311 in the imaging device 100 according to this embodiment. The pixel 311 includes a photoelectric conversion unit 4112A and a detection circuit 312. The detection circuit 312 includes an amplifier 2B, a charge accumulation region FD, a switch unit 4B, and an output selection unit 5B.
[0263] With reference to FIG. 46, the structure and function of the detection circuit 312 will be described in detail.
[0264] 46 shows a schematic example of a circuit configuration of the detection circuit 312. The switch section 4B includes a switch transistor 401. A control signal line CON5 is connected to the gate of the switch transistor 401. A charge storage region FD is connected to one of the source and drain of the switch transistor 401. A reference voltage VR4 is connected to the other of the source and drain of the switch transistor 401. A control signal CON6 is connected to one of the source and drain of the amplification transistor 202.
[0265] Next, the operation flow of the detection circuit 312 will be described with reference to FIG.
[0266] 47 is a timing chart showing an example of the operation of the detection circuit 312. The horizontal axis of each graph indicates time, and on the vertical axis, from top to bottom, CON5 indicates the voltage of the control signal line CON5. CON6 indicates the voltage of the control signal line CON6. CON7 indicates the voltage of the selection control signal line CON7.
[0267] (Reset period) At time t28, the voltage of the control signal line CON5 is set to a high level to turn on the switch transistor 401. At this time, the reference voltage VR4 and the charge storage region FD are connected. Also, at time t28, the voltage of the selection control signal line CON7 is at a low level, and the selection transistor 501 is in an off state. That is, the amplification transistor 203 is electrically disconnected from the signal read line 7. In this state, the control signal CON6 is set to the first reference voltage so that the charge storage region FD becomes a voltage close to the desired reset voltage VRST (=VR4). At this time, by setting the band of the amplification transistor 202 to the third band, which is a wide band, the charge storage region FD, the gate of the amplification transistor 202, and the other of the source and drain of the third amplification transistor 202 are set to the desired voltage at high speed.
[0268] The closer the voltage of the charge storage region FD is to the reset voltage VRST, the shorter the time required for noise suppression will be, and the shorter the drive time will be. Therefore, it is desirable to apply a voltage to the control signal line CON6 so that the voltage of the charge storage region FD becomes a voltage close to the reset voltage VRST. However, if there is sufficient drive time, the voltage setting value is not limited to this.
[0269] At time t29, the voltage of the control signal line CON5 is set to low level to turn off the switch transistor 401, thereby disconnecting the reference voltage VR4 from the charge storage region FD.
[0270] (Noise suppression period) With the switch transistor 401 turned off and the reference voltage VR4 and the charge storage region FD disconnected, a noise suppression operation and a signal level or reset level read operation are performed.
[0271] During the period from time t29 to t31, the selection control signal line CON7 remains at a low level, turning off the selection transistor 501. That is, the signal readout line 7 and the amplification transistor 203 remain electrically disconnected. In this state, the voltage of the control signal line CON6 is set to the second reference voltage. This causes the amplification transistor 202 to gradually change from on to off.
[0272] In the period from time t29 to t31, the second reference voltage is set so that the band of the amplifying transistor 202 becomes a fourth band narrower than the third band. This makes it possible to limit the band of the amplifying transistor 202 to within the band of the amplifier 2B formed by its own feedback loop. Furthermore, reset noise generated in the amplifying transistor 202 can be efficiently suppressed over the entire band.
[0273] After the noise is sufficiently suppressed, at time t31, the voltage of the control signal line CON6 is changed to the fourth reference voltage at which the amplification transistor 202 is completely turned off. This cuts off the feedback loop of the amplification transistor 202, and the voltage of the charge storage region FD becomes stable with the noise suppressed.
[0274] In addition, the taper reset described with reference to Figs. 18 and 33 may be applied to the noise suppression period of this embodiment. Fig. 48 is a timing chart showing an example of the operation of the detection circuit 312 when the taper reset is applied. As shown in Fig. 48, during the period from time t29 to t30, the voltage of the control signal line CON6 may be gradually changed within the range from the second reference voltage to the reference voltage so that the amplification transistor 202 crosses the threshold voltage. The amplification transistor 202 gradually changes from the on state to the off state. This makes it possible to suppress noise generated in the charge storage region FD in the entire band.
[0275] (Exposure / Readout Period) With noise in the charge accumulation region FD sufficiently suppressed and the voltage stable, signal charge is accumulated in the charge accumulation region FD for a desired period. Then, at time t32, the selection transistor 501 is turned on to electrically connect the amplification transistor 203 to the signal readout line 7. As a result, the amplification transistor 203 and the constant current source 6 form a source follower circuit. The signal charge accumulated in the charge accumulation region FD is amplified by the source follower circuit and output to the peripheral circuit (CDS circuit, A / D circuit, etc.) via the signal readout line 7.
[0276] According to this embodiment, by controlling the switch transistor 401, it becomes easy to set the charge storage region FD to a desired reset voltage VRST at high speed.
[0277] In the fourth embodiment, the gain of the amplifier 2A is set to -A times, and the reset noise generated in the amplifying transistor 201 or the amplifying transistor 202 is fed back while being band-limited. This suppresses the reset noise to 1 / (1+A)1 / 2 times.
[0278] In contrast, according to this embodiment, feedback is applied after the switch transistor 401 is turned off, so that the reset noise generated in the switch transistor 401 can be significantly suppressed to 1 / (1+A)1 / 2. Furthermore, the reset noise generated in the amplifier transistor 202 is suppressed to 1 / (1+A)1 / 2 by applying feedback while limiting the band. Furthermore, as in the modified example of the fourth embodiment, by setting the capacitance C3 of the capacitive element 19 to be larger than the capacitance Cfd of the charge storage region FD, the kTC noise generated in the amplifier transistor 202 can be reduced to (kT / C3)1 / 2<(kT / Cfd)1 / 2. Furthermore, by setting the capacitance element 21 to be smaller than the capacitance Cfd of the charge storage region FD, the voltage division between the capacitance Cfd of the charge storage region FD and the capacitance C4 of the capacitive element 21 is The amount of noise in the charge accumulation region FD can be attenuated by a factor of C4 / (Cfd+C4).
[0279] The effect obtained by this embodiment will be specifically compared with the effect obtained by the configurations shown in Figs. 40 and 43 of the embodiment. According to the configuration shown in Fig. 40, when the gain of the amplifier 2A is A times and the gain of the amplifying transistor 201 is A' times, the reset noise of the amplifying transistor 201 is suppressed to 1 / (1+A)1 / 2=1 / (1+A')1 / 2. On the other hand, according to the configuration shown in Fig. 43, when the gain of the amplifier 2A is A and the gain of the amplifying transistor 202 is A', the reset noise of the amplifying transistor 202 is suppressed to 1 / (1+A)1 / 2=1 / [1+A'×{C4 / (Cfd+C4)}×(C3 / Cfd)]1 / 2. In this way, the reset noise can be suppressed compared to the configuration shown in Fig. 40.
[0280] On the other hand, according to this embodiment, when the gain of the amplifier 2B is A times and the gain of the amplifying transistor 202 is A' times, the reset noise of the switch transistor 401 is suppressed to 1 / (1+A)=1 / [1+A'×{C4 / (Cfd+C4)}]. Also, the reset noise of the amplifying transistor 202 is suppressed to 1 / (1+A)1 / 2=1 / [1+A'×{C4 / (Cfd+C4)}×(C3 / Cfd)]1 / 2. The total noise is obtained from the square root of the sum of the squares, so that the reset noise can be suppressed significantly compared to the fourth embodiment.
[0281] According to this embodiment, reset noise can be significantly suppressed compared to the fourth embodiment due to the effects of the capacitive elements 19 and 21. Furthermore, by providing the switch unit 4B, it becomes easier to perform reset and noise suppression at high speed.
[0282] In this way, by providing the capacitive element 19, the capacitive element 21, and the switch section 4B, a large noise suppression effect can be obtained. However, the layout area also becomes large. Since the noise suppression effect depends on the presence or absence of the capacitive element and the absolute value of the capacitance, the designer can select and design any configuration and absolute value of the capacitance.
[0283] Below, a modification of the detection circuit 312 according to the present embodiment will be described.
[0284] 49 and 50 are schematic diagrams showing other exemplary circuit configurations of the detection circuit 312. As shown in Fig. 49, one of the source and drain of the switch transistor 401 may be connected to the charge storage region FD, and the other of the source and drain of the switch transistor 401 may be connected to the control signal line CON6. With this configuration, resetting can be performed without applying the reference voltage VR4, and the same effect as the configuration shown in Fig. 46 can be obtained.
[0285] As another modification of the switch section 4B, as shown in Fig. 50, one of the source and drain of the switch transistor 401 may be connected to the charge storage region FD, and the other of the source and drain may be connected to the connection point (i.e., RD) between the capacitance element 19 and the capacitance element 21. With this configuration, resetting can be performed without applying the reference voltage VR4, and the same effect as the configuration shown in Fig. 46 can be obtained. With this configuration, in particular, the gate of the amplifier transistor 202 and the other of the source and drain of the amplifier transistor 202 can be set to the same voltage, so that the noise cancellation time can be shortened.
[0286] In the first to fifth embodiments, the operation of the feedback circuit 30 or 30' using negative feedback has been described, but the feedback is not limited to this. Positive feedback can also be added to the feedback. For example, noise may be suppressed by applying negative feedback after applying positive feedback, or noise may be suppressed in the reverse order. In addition, positive feedback and negative feedback may be applied simultaneously. By using positive feedback in this way, it is expected that noise suppression can be made even faster and more efficient.
[0287] 46, 49, and 50, the photoelectric conversion unit 4112A and the amplifying transistor 203 may be arranged on the first substrate 101, the terminal CON6 and the constant current source 6 may be arranged on the second substrate 102, and these may be connected via the substrate connection portion CON. This allows the signal to be transmitted to the pixel while reducing the attenuation of the signal. Note that the control signal to CON5 of the switch transistor 401 on the first substrate 101 may be transmitted from a control signal generating circuit arranged on the second substrate 102 via the substrate connection portion CON. Also, in FIG. 46, the circuit generating the reference voltage VR4 may be arranged on the second substrate 102, and the reference voltage VR4 may be transmitted to the switch transistor 401 on the first substrate 101 via the substrate connection portion CON.
[0288] Sixth embodiment Fig. 51 illustrates an exemplary circuit configuration of a pixel 311 according to embodiment 6. The pixel 311 according to embodiment 6 operates in the same manner as the embodiment illustrated in Figs. 38A and 38B. The amplifier transistor SF is disposed on the first substrate 101 similarly to the photoelectric conversion unit 4112A, and both ends of the amplifier transistor SF are electrically connected to the second substrate 102 by a substrate connection portion CON.
[0289] The photoelectric conversion unit 4112A may be provided on the first substrate 101 like a silicon image sensor, but may be laminated on the first substrate 101 like an organic image sensor.
[0290] 52 to 54 are schematic diagrams showing other exemplary circuit configurations of the pixel 311 according to the sixth embodiment.
[0291] 52, a transfer transistor TX is connected to the photoelectric conversion unit 4112A. This makes it possible to transfer the signal charge generated in the photoelectric conversion unit 4112A to the charge accumulation region FD with less noise.
[0292] As shown in Fig. 51, the capacitance connected to the gate of the amplifier transistor SF may be disposed on the same first substrate 101 as the substrate on which the amplifier transistor is disposed. If the capacitance connected to the gate of the amplifier transistor SF is disposed across the substrate, parasitic capacitance may be generated when the substrate is crossed. The capacitance connected to the gate of the amplifier transistor SF contributes to the conversion gain. Therefore, the conversion gain can be increased by reducing the capacitance Cc and the parasitic capacitance to the charge storage region FD.
[0293] Furthermore, in this embodiment, the constant current sources PC and NC are disposed on the second substrate 102, but, for example, the constant current source PC may be provided on the first substrate 101, and the constant current source NC may be provided on the second substrate 102. Alternatively, the constant current source PC and the constant current source NC may be provided on both the first substrate 101 and the second substrate 102, respectively. In this case, the constant current source PC and the constant current source NC provided on the first substrate 101 may be used as a current source for a shutter, and the constant current source PC and the constant current source NC provided on the second substrate 102 may be used as a current source for readout, with switching over time depending on the operation mode.
[0294] On the other hand, as described in the third to fifth embodiments, by increasing the capacitance value of the capacitance Cs, it is possible to further reduce noise. Therefore, as shown in FIG. 53, by providing the capacitance Cs on the second substrate 102 and increasing the area of the capacitance Cs, it is possible to realize a larger capacitance value. In this case, the capacitance Cp may be connected at the substrate connection part CON. The capacitances Cs and Cp may be configured as any of DMOS capacitance, MIM capacitance, MOS capacitance, and fringing capacitance with the surrounding structure.
[0295] 54, a capacitance Cs1 may be provided on the first substrate 101, and a capacitance Cs2 may be provided on the second substrate 102 so as to be connected in parallel to the capacitance Cs1. Furthermore, a capacitance Cp may be provided between the substrate connection parts CON, or between the first substrate 101 and the second substrate 102. In this case, a small distance may be provided between the first substrate 101 and the second substrate 102 to create Cp, so that a parallel plate capacitor may be formed.
[0296] 55 and 56 show exemplary cross sections of an imaging device 100 according to the sixth embodiment.
[0297] Fig. 55 is a schematic diagram showing an exemplary cross section of the imaging device 100 according to the sixth embodiment when it is a silicon image sensor. In Fig. 55, the first substrate 101 includes a wiring layer 14 and a silicon substrate 11 on the wiring layer 14. A color filter 12 and a microlens 13 are laminated in this order on the silicon substrate 11. A photodiode 15, an amplifying transistor 200, a transfer transistor TX, and a pixel isolation region 24 for isolating pixels from each other are formed on the silicon substrate 11. The wiring layer 14 includes a capacitance Cc. The second substrate 102 includes a silicon substrate 16 and a wiring layer 17 on the silicon substrate 16. The wiring layer 17 includes a capacitance Cs.
[0298] In FIG. 55, the first substrate 101 and the second substrate 102 are connected by a substrate connection portion CON. The connection by the substrate connection portion CON may be, for example, a Cu-Cu hybrid bonding, a connection by a metal bump, or a connection using a TSV. In FIG. 55, a back-illuminated silicon image sensor is provided on the first substrate 101, and a constant current source and a capacitance Cs are arranged on the second substrate 102. In addition, the capacitance Cp is realized by using the space between the first substrate 101 and the second substrate 102. In this embodiment, two or more substrate connection portions CON are provided for one pixel or one pixel block. One of the substrate connection portions CON is made low-capacitor for pixel readout, and the other substrate connection portion CON is made large-capacitor for a capacitance connected within the pixel, and is connected to the second substrate 102. In this embodiment, three substrate connection portions CON may be provided for one pixel or one pixel block. Of the three substrate connection portions CON, the substrate connection portion CON electrically connected to the capacitance Cs may be connected to the capacitance Cp. Of the three locations, it is preferable that no capacitance is connected to the substrate connection portion CON that is electrically connected to the output signal line 314 in order to increase the conversion gain.
[0299] FIG. 56 is a schematic diagram showing an exemplary cross section of an imaging device according to the sixth embodiment, which is a photoelectric conversion unit stacked type image sensor such as an organic image sensor. In FIG. 56, the first substrate 101 includes a stacked body in which a silicon substrate 18, a wiring layer 19, and a photoelectric conversion unit 20 are stacked in this order. A color filter 12 and a microlens 13 are stacked in this order on the photoelectric conversion unit 20. The photoelectric conversion unit 20 includes a pixel electrode 21, a counter electrode 23, and a photoelectric conversion layer 22 sandwiched between these electrodes. The silicon substrate 18 is formed with an amplifying transistor 200 and a band control transistor 300. The wiring layer 19 includes a capacitance Cc. The second substrate 102 includes a silicon substrate 16 and a wiring layer 17 on the silicon substrate 16. The wiring layer 17 includes a capacitance Cs. The first substrate 101 and the second substrate 102 are connected by a substrate connection portion CON. The connection by the substrate connection portion CON is, for example, a connection using a TSV. In the configuration example shown in FIG. 56, similarly to the configuration example shown in FIG. 55, two or more substrate connection parts CON may be provided for each pixel or each pixel block.
[0300] Seventh embodiment 57 and 58 are schematic views illustrating an example of a laminated body 1000 according to the seventh embodiment.
[0301] 57 and 58, the laminate 1000 includes a first substrate 101 and a second substrate 102. The first substrate 101 is laminated on the second substrate 102.
[0302] 57 and 58 show the connection relationship between the first substrate 101 and the second substrate 102. FIG.
[0303] 57, a total of four pixels in two rows and two columns are shown as representatives of the plurality of pixels 311 on the first substrate 101. The four pixels are pixel 311A, pixel 311B, pixel 311C, and pixel 311D.
[0304] The first substrate 101 and the second substrate 102 are connected by a substrate connection part CON. The second substrate 102 is provided with a bias control circuit 320 and a constant current source circuit 330. A vertical scanning circuit 350 and an analog-to-digital conversion circuit (also called a column ADC circuit) may be disposed on the second substrate 102. This makes it possible to shorten the signal paths between the vertical scanning circuit 350 and the column ADC circuit and the pixels.
[0305] In the configuration shown in FIG. 57, constant current source circuits 330A-330D and bias control circuits 320A-320D are provided for each pixel. The constant current source circuits 330A-330D may have the same circuit configuration as the constant current source circuit 330 shown in FIG. 4, or may have the circuit configuration of other embodiments. Similarly, the bias control circuits 320A-320D may have the same circuit configuration as the bias control circuit 320 shown in FIG. 4, or may have the circuit configuration of other embodiments. As a result, in the configuration of FIG. 57, readout and reset operations can be set for each pixel. Conventionally, in the column parallel operation of a CMOS image sensor, not only readout but also electronic shutter operation is performed row by row. On the other hand, in this embodiment, readout and electronic shutter operation are possible for each pixel. Therefore, a global shutter operation is possible. Therefore, it is possible to avoid rolling shutter distortion that occurs when electronic shutter operation or readout operation is performed row by row.
[0306] In the configuration shown in FIG. 57, it is possible to perform readout and reset operations on all pixels simultaneously, or to select only a specific group of pixels to perform readout and reset operations. For example, it is possible to perform shuttering for each 2×2 pixel block, or to reset only the row and column numbers (1,1) of a 2×2 pixel block. By resetting only some of the pixels at the same time, it is possible to reduce current consumption concentration and exposure time dead time while mitigating rolling shutter distortion. Of course, it is also possible to apply wide dynamic range operation by controlling the exposure time for each block, coded exposure, and computational photography.
[0307] Moreover, by performing readout and ADC operations for each block or pixel, rather than performing column-parallel ADC operations, the problem of random horizontal noise correlated in the row direction can be avoided. Since the human eye is sensitive to patterns correlated in the vertical and horizontal directions, in the past, random horizontal noise had to be made sufficiently smaller than pixel random noise so that it was not visible. In contrast, by performing readout and ADC operations for each pixel block or pixel as in this embodiment, the noise caused by the ADC appears scattered to the human eye, which has the advantage of easing the required specifications for the noise value itself.
[0308] 58 illustrates a state in which the bias control circuit 320 and the constant current source circuit 330 provided on the second substrate 102 are shared by a plurality of pixels. The constant current source circuit 330 may have the same circuit configuration as the constant current source circuit 330 shown in FIG. 4, or may have a circuit configuration of another embodiment. Similarly, the bias control circuit 320 may have the same circuit configuration as the bias control circuit 320 shown in FIG. 4, or may have a circuit configuration of another embodiment.
[0309] Of course, the pixels to be shared do not have to be adjacent pixels as shown in the figure, but may be shared every other pixel or in accordance with the color filter arrangement. By consolidating the bias control circuits 320 for each color, it is expected that the color shift caused by the mismatch of the circuits will be mitigated.
[0310] Also, a switch for switching commonality may be provided on the second substrate 102 for control.
[0311] (Embodiment 8) With reference to FIG. 59, a camera system 600 according to the present embodiment will be described.
[0312] 59 shows a schematic configuration example of a camera system 600 according to this embodiment. The camera system 600 includes a lens optical system 601, an imaging device 602, a system controller 603, and a camera signal processing unit 604.
[0313] The lens optical system 601 includes, for example, an autofocus lens, a zoom lens, and an aperture. The lens optical system 601 focuses light on the imaging surface of the imaging device 100. As the imaging device 602, the imaging devices 100 according to the first to seventh embodiments described above can be widely used.
[0314] The system controller 603 controls the entire camera system 600. The system controller 603 can be realized by, for example, a microcomputer.
[0315] The camera signal processing unit 604 functions as a signal processing circuit that processes an output signal from the imaging device 100. The camera signal processing unit 604 performs processes such as gamma correction, color interpolation processing, spatial interpolation processing, and auto white balance. The camera signal processing unit 604 can be realized by, for example, a DSP (Digital Signal Processor).
[0316] According to the camera system 600 of this embodiment, by using the imaging device 100 according to the first to seventh embodiments, it is possible to appropriately suppress reset noise (kTC noise) during readout. As a result, it is possible to accurately read out electric charges and obtain a good image.
[0317] In this specification, when an element is described as being "connected" to another element, this means that a third element may be present between these elements. When an element is described as being "directly connected" to another element, this means that no third element is present between these elements. Furthermore, when an element is described as being "electrically connected" to another element, this means that these elements do not necessarily have to be electrically connected at all times, but are electrically connected at least at some point in time. [Industrial Applicability]
[0318] An imaging device according to the present disclosure can be applied to various camera systems and sensor systems, such as digital still cameras, medical cameras, surveillance cameras, vehicle-mounted cameras, digital single-lens reflex cameras, and digital mirrorless single-lens cameras. [Explanation of symbols]
[0319] 1, 4112A, 4112B Photoelectric conversion unit 6, 6A, 6B, 8, 433, 433A, 434, 434A constant current source 312, 312B, 412A, 412B Detection Circuit 311, 311A, 311B, 311C, 311D, 411A, 411B, 411D Pixels 200, 4121, 4121A, 4121B Amplifying transistor (first transistor) 300, 4111A, 4111B Bandwidth control transistor (second transistor) 500, 4122, 4122A, 4122B Select transistor (third transistor) 30 Feedback Circuit 320 Bias control circuit 101 First board 102 Second board 1000 laminate
Claims
1. A first substrate; a second substrate laminated on the first substrate; a first connection portion and a second connection portion, each of which electrically connects the first substrate and the second substrate; A first pixel and a second pixel; Equipped with each of the first pixel and the second pixel includes a photoelectric conversion unit that performs photoelectric conversion on incident light to generate a signal charge, and a transistor that outputs a signal corresponding to the signal charge; the first substrate includes the transistor of the first pixel and the transistor of the second pixel; The second substrate is a first wiring to which the signal output from the transistor of the first pixel and the signal output from the transistor of the second pixel are input; a constant current source circuit connected to the transistor of the first pixel via the first wiring and the first connection portion, and connected to the transistor of the second pixel via the first wiring and the second connection portion; Including, each of the first connection portion and the second connection portion is connected to the first wiring without passing through a transistor; Imaging device.
2. the constant current source circuit is connected to one of the source and the drain of the transistor of the first pixel via the first wiring and the first connection portion, and is connected to one of the source and the drain of the transistor of the second pixel via the first wiring and the second connection portion; The imaging device according to claim 1 .
3. a third connection portion and a fourth connection portion, each of which electrically connects the first substrate and the second substrate; The second substrate is A second wiring; a bias circuit connected to the transistor of the first pixel via the second wiring and the third connection portion, and connected to the transistor of the second pixel via the second wiring and the fourth connection portion; Including, The imaging device according to claim 1 .
4. a third connection portion and a fourth connection portion, each of which electrically connects the first substrate and the second substrate; The second substrate is A second wiring; a bias circuit connected to the other of the source and the drain of the transistor of the first pixel via the second wiring and the third connection portion, and connected to the other of the source and the drain of the transistor of the second pixel via the second wiring and the fourth connection portion; Including, The imaging device according to claim 2 .
5. A first substrate; a second substrate laminated on the first substrate; a first connection portion and a second connection portion, each of which electrically connects the first substrate and the second substrate; A first pixel and a second pixel; Equipped with each of the first pixel and the second pixel includes a photoelectric conversion unit that performs photoelectric conversion on incident light to generate a signal charge, and a transistor that outputs a signal corresponding to the signal charge; the first substrate includes the transistor of the first pixel and the transistor of the second pixel; The second substrate is a first wiring for applying a voltage to the transistor of the first pixel and the transistor of the second pixel; a bias circuit connected to the transistor of the first pixel via the first wiring and the first connection portion, and connected to the transistor of the second pixel via the first wiring and the second connection portion; Including, each of the first connection portion and the second connection portion is connected to the first wiring without passing through a transistor; Imaging device.
6. the bias circuit is connected to one of the source and the drain of the transistor of the first pixel via the first wiring and the first connection portion, and is connected to one of the source and the drain of the transistor of the second pixel via the first wiring and the second connection portion; The imaging device according to claim 5 .
7. Each of the first pixel and the second pixel includes a PMOS transistor and an NMOS transistor. The imaging device according to claim 1 .
8. The first pixel and the second pixel are arranged along a first direction, The first wiring extends along the first direction. The imaging device according to claim 1 .
9. The second wiring is in a mesh shape.
5. The imaging device according to claim 3.
10. The first wiring is in a mesh shape.
7. The imaging device according to claim 5.
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