Solar cell element performance evaluation equipment
The solar cell element performance evaluation apparatus stabilizes power generation performance using a preparation unit with an LED light source and transports elements for immediate evaluation, addressing inefficiencies in existing methods and reducing evaluation time while maintaining accuracy and cost-effectiveness.
Patent Information
- Application Number
- JP2024575877
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-02-06
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2043-02-06
AI Technical Summary
Existing solar cell element performance evaluation methods are time-consuming and inefficient, particularly for perovskite semiconductor-based cells, which require stabilization of power generation performance before accurate evaluation can be conducted.
A solar cell element performance evaluation apparatus and method that includes a preparation unit to stabilize the power generation performance using a second light source, such as an LED, and a transport device to convey the elements to an evaluation unit for immediate assessment, utilizing a first light source and measurement unit to measure IV curve characteristics.
The apparatus and method significantly reduce evaluation time by stabilizing performance beforehand, allowing for efficient and accurate power generation assessment with reduced costs and minimized deterioration of the solar cell elements.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD An embodiment of the present invention relates to a solar cell element performance evaluation apparatus and a solar cell element performance evaluation method. [Background technology]
[0002] There is a demand for a performance evaluation apparatus and a performance evaluation method for a solar cell element that can shorten the evaluation time. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent No. 6916538 Summary of the Invention [Problem to be solved by the invention]
[0004] An object of the present invention is to provide a solar cell element performance evaluation apparatus and a solar cell element performance evaluation method that can shorten the performance evaluation time. [Means for solving the problem]
[0005] The solar cell element performance evaluation device of the embodiment includes an evaluation unit, a preparation unit, A conveying device; The evaluation unit has a first light source that irradiates light onto the solar cell element including the perovskite semiconductor, and evaluates the power generation performance of the solar cell element. The preparation unit has a second light source that irradiates light onto the solar cell element before it is transported to the evaluation unit, and prepares for evaluation of the power generation performance of the solar cell element. The transport device extends in a first direction from the preparation unit toward the evaluation unit. The transport device transports the solar cell elements, whose power generation performance has been stabilized by being irradiated with light from a second light source in the preparation unit, to the evaluation unit. The second light source is an LED. [Brief explanation of the drawings]
[0006] [Figure 1] FIG. 1 is a schematic configuration diagram of a performance evaluation device for solar cell elements according to a first embodiment. [Figure 2]FIG. 10 is a schematic configuration diagram of a performance evaluation device for solar cell elements according to a first modified example of the first embodiment. [Figure 3] FIG. [Figure 4] FIG. 10 is a schematic diagram showing the configuration of a performance evaluation device for solar cell elements according to a second embodiment. [Figure 5] FIG. 10 is a schematic configuration diagram of a performance evaluation device for solar cell elements according to a third embodiment. [Figure 6] An expanded view of the probe's surroundings. [Figure 7] FIG. [Figure 8] FIG. 8 is an enlarged view of part VIII at position A in FIG. 7. [Figure 9] 9 is a cross-sectional view taken along line IX-IX in FIG. 8. [Figure 10] An enlarged view of the X portion at position B in Figure 7. [Figure 11] 11 is a cross-sectional view taken along line XI-XI in FIG. [Figure 12] An enlarged view of part XII at position C in Figure 7. [Figure 13] 13 is a cross-sectional view taken along line XIII-XIII in FIG. 12. DETAILED DESCRIPTION OF THE INVENTION
[0007] Hereinafter, a solar cell element performance evaluation apparatus and a solar cell element performance evaluation method according to an embodiment will be described with reference to the drawings. (First embodiment) FIG. 1 is a schematic diagram of a solar cell element performance evaluation device 10 according to a first embodiment. The solar cell element 1 includes a perovskite structure as a perovskite semiconductor at least in part. The perovskite structure is one of the crystal structures, and is the same as the crystal structure of perovskite. Typically, the perovskite structure is composed of ions A, B, and X, and is represented by the following general formula (1): ABX3... (1) A primary ammonium ion can be used as A. Specifically, CH3NH3 + (hereinafter referred to as MA), C2H5NH3 +, C3H7NH3 + , C4H9NH3 + , and HC(NH2)2 + (hereinafter referred to as FA), etc., CH3NH3 + is preferable, but not limited to this. + , Rb + , 1,1,1-trifluoro-ethylammonium iodide (FEAI) are also preferred, but are not limited to these. 2+ or Sn 2+ Divalent metal ions such as, but not limited to, X can be used. - , Br - or I - Halide ions such as the following can be used. The materials that make up ions A, B, and X can each be single or mixed. The constituent ions do not necessarily need to match the stoichiometric ratio of ABX3 to function.
[0008] The solar cell element 1 of the first embodiment is a first solar cell element 1a. The first solar cell element 1a is a tandem solar cell element in which a top cell and a bottom cell are stacked. The top cell includes a perovskite semiconductor. The bottom cell includes silicon. The first solar cell element 1a including silicon is a rigid panel-type (cell-type) solar cell element. The solar cell element 1 has terminals 2. The terminals 2 are a pair of terminals consisting of a positive (positive) terminal 3 and a negative (negative) terminal 4, and electrically connect the solar cell element 1 to the outside. The first solar cell element 1a has a pair of terminals 2a (a positive terminal 3a and a negative terminal 4a) arranged on the surface on the top cell side.
[0009] The solar cell element performance evaluation device 10 has an evaluation unit 11 that evaluates the power generation performance of the solar cell element 1. The evaluation unit 11 measures, for example, the IV (current vs. voltage) curve characteristics of the solar cell element 1. The evaluation unit 11 has a first light source 12 and a measurement unit 15. The first light source 12 irradiates the solar cell element 1 with light. For example, the first light source 12 is a xenon (Xe) lamp or a halogen lamp. The solar cell element 1 generates electrons and holes (carriers) by receiving light, thereby generating electricity. The measurement unit 15 connects probes to the terminals 2 of the solar cell element 1 and measures the power generation performance of the solar cell element 1.
[0010] The performance evaluation device 10 uses an in-line method to evaluate the power generation performance of the solar cell elements 1. The performance evaluation device 10 has a transport device 18 that transports the solar cell elements 1 to the evaluation unit 11 one by one in order. The transport device 18 extends from the preparation section 20 to the evaluation section 11, which will be described later. The transport device 18 supports the solar cell elements 1 arranged in a row. The transport device 18 is a pair of rails or belts, etc. The transport device 18 is a single line that travels from the preparation section 20 to the evaluation section 11 in the X-axis direction. The transport device 18 may be continuous or may be divided into two or more parts. When the transport device 18 is divided into two or more parts, the transport speed can be changed between the preparation unit 20 and the evaluation unit 11, so there is no need to match the distance from the preparation unit 20 to the evaluation unit 11 to the pitch of the solar cell elements 1 in the preparation unit 20. The transport device 18 may support the solar cell elements 1 by suction using negative pressure, or may support them using claws (not shown) attached to the transport device 18. The evaluation unit 11 evaluates the power generation performance while the transport of the solar cell elements 1 is stopped. The transport device 18 transports the solar cell elements 1 intermittently each time the evaluation of the solar cell element 1 is completed in the evaluation unit 11. By adopting the inline method, only one or a few evaluation units 11 are required, thereby reducing the cost of the performance evaluation device 10.
[0011] In the present application, the Z direction, X direction, and Y direction of the Cartesian coordinate system are defined as follows. The Z direction is the direction in which the solar cell element 1 is supported relative to the transport device 18. For example, the Z direction is the vertical direction, and the +Z direction is the upward direction. The X direction is the transport direction of the solar cell element 1 by the transport device 18. The +X direction (first direction) is the downstream side in the transport direction. The Y direction is the width direction of the transport device 18. For example, the X and Y directions are horizontal directions. The solar cell element 1 is arranged in the +Z direction of the transport device 18 in a state parallel to the XY plane. The first light source 12 is arranged in the +Z direction of the transport device 18 and irradiates light in the -Z direction. The first light source 12 may also be arranged in the -Z direction of the transport device 18 and irradiate light in the +Z direction.
[0012] Generally, a solar cell element 1 including a perovskite semiconductor requires a certain time (about several minutes) from the start of light reception until its power generation performance stabilizes. The performance evaluation device 10 has a preparation unit 20 that prepares for evaluation of the power generation performance of the solar cell element 1.
[0013] The preparation unit 20 irradiates light onto the solar cell elements 1 before they are transported to the evaluation unit 11. The preparation unit 20 is arranged in the -X direction of the evaluation unit 11. The preparation unit 20 irradiates light onto a plurality of solar cell elements 1 supported by the transport device 18. The solar cell elements 1 pass through the preparation unit 20 over a predetermined time. By passing through the preparation unit 20, the power generation performance of the solar cell elements 1 is stabilized. The evaluation unit 11 can immediately evaluate the power generation performance of the solar cell elements 1 transported from the preparation unit 20. The evaluation time of the performance evaluation device 10 is shortened. The evaluation accuracy of the performance evaluation device 10 is improved.
[0014] The preparation unit 20 has a second light source 22 that irradiates light onto the multiple solar cell elements 1. The second light source 22 is arranged in the +Z direction of the transport device 18 and irradiates light in the -Z direction. The number of light sources may be one or more. The second light source 22 is limited to a light source that has an emission wavelength in the wavelength range absorbed by the solar cell elements 1. Examples include a xenon lamp, a high-pressure mercury lamp, a halogen lamp, and an LED. It is desirable for the irradiation range of the second light source 22 to cover the entire power generation area of the solar cell elements 1, but this is not limited to this. For example, the second light source 22 is an LED (Light-Emitting Diode). By using an LED, the cost of the second light source 22 is reduced and temperature rise of the second light source 22 and the solar cell elements 1 is suppressed.
[0015] When light is irradiated onto the solar cell element 1 in the preparation section 20, charge separation occurs due to the photoelectric effect, and electrons and holes are generated. If electrons or holes accumulate in the solar cell element 1, the solar cell element 1 will deteriorate. To consume the electrons or holes generated in the solar cell element 1 in the preparation section 20, a resistor 31 is connected to the solar cell element 1.
[0016] The preparation section 20 of the first embodiment includes a resistor 31 , a probe 32 , and a support member 30 . The resistor 31 is connected to the first solar cell element 1a to form a closed circuit. The resistor 31 is configured to limit the maximum output voltage (Vmpp) and maximum output current (Impp) of the first solar cell element 1a. ), but this is not a limitation. Resistor 31 may be a variable resistor. The resistance value of the variable resistor is tuned to correspond to the maximum output of the first solar cell element 1a to be connected. These resistors 31 allow electrons or holes to be consumed efficiently.
[0017] The preparation unit 20 has a plurality of resistors 31. The plurality of resistors 31 are arranged side by side in the X direction at the same pitch as the first solar cell elements 1a. The number of resistors 31 matches the number of first solar cell elements 1a included in the preparation unit 20. Because only a small number of resistors 31 is required, the cost of the performance evaluation device 10 is reduced. The probe 32 can connect the resistor 31 to the terminal 2a of the first solar cell element 1a.
[0018] The support member 30 is disposed in the +Z direction of the transport device 18. For example, the support member 30 is a frame parallel to the XY plane. A resistor 31 and a probe 32 are attached to the support member 30 in the -Z direction. The support member 30 is movable together with the probe 32 in the Z direction, which intersects with the surface of the terminal 2a of the first solar cell element 1a. The probe 32 can come into contact with and move away from the terminal 2a as the support member 30 moves in the Z direction. When the support member 30 moves in the -Z direction, the probe 32 comes into contact with the terminal 2a, thereby connecting the resistor 31 and the first solar cell element 1a. When the support member 30 moves in the +Z direction, the probe 32 moves away from the terminal 2a, thereby disconnecting the resistor 31 and the first solar cell element 1a.
[0019] The control unit 90 is a microcomputer equipped with a processor such as a CPU or a GPU. The control unit 90 has a function of controlling the operation of each unit of the performance evaluation device 10. The functions of the control unit 90 are realized, for example, by a processor such as a CPU executing a program. In addition, some or all of the functions of the control unit 90 may be realized by a large scale integration (LSI) chip. The present invention may be realized by hardware such as a logic circuit (LSI), an application specific integrated circuit (ASIC), or a field-programmable gate array (FPGA), or may be realized by a combination of software and hardware.
[0020] The operation of the performance evaluation device 10 of the first embodiment will be described. The evaluation unit 11 evaluates the power generation performance of the first solar cell element 1a. The first light source 12 irradiates light onto the first solar cell element 1a in the evaluation unit 11. The measurement unit 15 measures the power generation performance of the first solar cell element 1a.
[0021] The preparation unit 20 irradiates light onto the first solar cell elements 1a before their power generation performance is evaluated (preparation step). The preparation unit 20 stabilizes the power generation performance of the first solar cell elements 1a before they are transported to the evaluation unit 11. The second light source 22 irradiates light onto the multiple first solar cell elements 1a in the preparation unit 20. A resistor 31 is connected to the first solar cell elements 1a. The resistor 31 consumes electrons or holes generated in the first solar cell elements 1a.
[0022] After measuring the power generation performance, the probe of the measuring unit 15 is moved away from the first solar cell element 1a in the evaluation unit 11 before the first solar cell element 1a is transported. Before the first solar cell element 1a is transported, the support member 30 of the preparation unit 20 moves in the +Z direction. The probe 32 moves away from the terminal 2 of the first solar cell element 1a in the preparation unit 20. Before the first solar cell element 1a is transported, the connection between the first solar cell element 1a and the resistor 31 is released.
[0023] The transport device 18 transports the first solar cell element 1a in the +X direction. After the measurement of the power generation performance, the first solar cell element 1a exits the evaluation unit 11. Before the measurement of the power generation performance, the first solar cell element 1a enters the evaluation unit 11. The multiple first solar cell elements 1a in the preparation section 20 are shifted in the +X direction to the position of the first solar cell element 1a adjacent in the +X direction. The first solar cell element 1a that was at the end in the +X direction inside the preparation section 20 exits the preparation section 20. The first solar cell element 1a that was on the outside in the -X direction of the preparation section 20 enters the preparation section 20.
[0024] A probe of the measuring unit 15 of the evaluation unit 11 is connected to the first solar cell element 1a. The evaluation unit 11 evaluates the power generation performance of the first solar cell element 1a (evaluation step). The support member 30 moves in the -Z direction. The probe 32 comes into contact with the terminal 2 of the first solar cell element 1a in the preparation unit 20. The resistor 31 of the first solar cell element 1a that is adjacent to the first solar cell element 1a in the -X direction, from which the connection with the resistor 31 was released before the first solar cell element 1a was transported, is connected to that first solar cell element 1a after the first solar cell element 1a is transported. The resistors 31 are connected to the multiple first solar cell elements 1a in order. The preparation unit 20 irradiates light onto the first solar cell elements 1a before they are transported to the evaluation unit 11.
[0025] As described above in detail, the performance evaluation device 10 for a solar cell element 1 according to the first embodiment has an evaluation unit 11 and a preparation unit 20. The evaluation unit 11 has a first light source 12 that irradiates light onto the solar cell element 1 including a perovskite semiconductor, and evaluates the power generation performance of the solar cell element 1. The preparation unit 20 has a second light source 22 that irradiates light onto the solar cell element 1 before it is transported to the evaluation unit 11, and prepares for evaluation of the power generation performance of the solar cell element 1.
[0026] The performance evaluation method for a solar cell element 1 according to the first embodiment includes a preparation step and an evaluation step. In the preparation step, light is irradiated onto the solar cell element 1 including a perovskite semiconductor before the power generation performance of the solar cell element 1 is evaluated. In the evaluation step, the power generation performance of the solar cell element 1 is evaluated.
[0027] The preparation unit 20 irradiates light onto the solar cell elements 1 before they are transported to the evaluation unit 11. This stabilizes the power generation performance of the solar cell elements 1. The evaluation unit 11 can immediately evaluate the power generation performance of the solar cell elements 1 transported from the preparation unit 20. This shortens the evaluation time of the performance evaluation device 10.
[0028] The preparation unit 20 has a resistor 31 that can be connected to the first solar cell element 1a to form a closed circuit. When the first solar cell element 1a is irradiated with light in the preparation section 20, electrons or holes are generated. The resistor 31 consumes the electrons or holes generated in the preparation section 20 to suppress the accumulation of the electrons or holes, thereby suppressing deterioration of the first solar cell element 1a.
[0029] The performance evaluation device 10 has a transport device 18. The transport device 18 extends in the +X direction from the preparation unit 20 toward the evaluation unit 11, supports the solar cell elements 1 in a line, and transports the solar cell elements 1 to the evaluation unit 11 in order. The performance evaluation device 10 uses an in-line method to evaluate the power generation performance of the solar cell element 1. Since one or a small number of evaluation units 11 are sufficient, the cost of the performance evaluation device 10 can be reduced.
[0030] Before the transport of the first solar cell element 1a, the connection between the first solar cell element 1a and the resistor 31 is released. After the transport of the first solar cell element 1a, the resistor 31 is connected to the first solar cell element 1a that is located in the -X direction of the first solar cell element 1a that has been released from the connection with the resistor 31. Resistors 31 are connected to the plurality of first solar cell elements 1a in order. The number of resistors 31 corresponds to the number of first solar cell elements 1a included in the preparation unit 20. Since only a small number of resistors 31 is required, the cost of the performance evaluation device 10 is reduced.
[0031] The preparation unit 20 has a resistor 31 and a probe 32. The probe 32 is capable of connecting the resistor 31 to the first solar cell element 1a. The probe 32 is capable of moving in the Z direction that intersects with the surface of the terminal of the first solar cell element 1a. Support members 30 that support probes 32 cooperate with transport device 18 to connect resistors 31 to the plurality of first solar cell elements 1a in sequence. Because only a small number of resistors 31 are required, the cost of performance evaluation device 10 can be reduced.
[0032] The second light source 22 is an LED. The use of an LED reduces the cost of the second light source 22 and also suppresses a rise in temperature of the second light source 22 and the solar cell element 1. The LED is preferably a white LED, but may also be a blue LED, a green LED, a red LED, or the like.
[0033] FIG. 2 is a schematic diagram of a solar cell element performance evaluation device 10 according to a first modified example of the first embodiment. The solar cell element 1 of the first modification is a second solar cell element 1b. Similar to the first solar cell element 1a, the second solar cell element 1b is a tandem solar cell element in which a top cell and a bottom cell are stacked. The second solar cell element 1b has terminals 2b arranged on the surface facing the top cell and the surface facing the bottom cell, respectively.
[0034] The preparation unit 20 of the performance evaluation device 10 of the first modified example has a plurality of clip members 40. The number of clip members 40 corresponds to the number of second solar cell elements 1b included in the preparation unit 20. The clip members 40 are placed at the ends of the second solar cell elements 1b in the -Y direction. The plurality of clip members 40 are supported by support rods 44 extending in the X direction.
[0035] 3 is a side view of the clip member 40. The clip member 40 has a pair of levers 45, a pair of probes 42, a resistor 41, and an actuator 46. The pair of levers 45 are made of an electrically insulating material such as resin. The pair of levers 45 are aligned in the Z direction with the support rod 44 in between. The levers 45 extend in the Y direction in a plan view. The levers 45 are rotatable around the support rod 44.
[0036] The pair of probes 42 extends from the resistor 41. The pair of probes 42 is attached to the +Y direction tips of the pair of levers 45. The pair of probes 42 can connect the resistor 41 to the second solar cell element 1b. The resistor 41 is connected to the second solar cell element 1b to form a closed circuit.
[0037] The actuator 46 is, for example, a pneumatic piston. The actuator 46 is disposed between a pair of levers 45 in the -Y direction of the support rod 44. The second solar cell element 1b is disposed between the pair of levers 45 in the +Y direction of the support rod 44. The actuator 46 extends and contracts to move the +Y direction tips of the pair of levers 45 in the Z direction. The actuator 46 moves the pair of probes 42 in the Z direction via the pair of levers 45. The pair of probes 42 are movable in the Z direction, which intersects with the surface of the terminal 2b of the second solar cell element 1b.
[0038] When the actuator 46 extends, the +Y direction tips of the pair of levers 45 move closer to each other. The pair of probes 42 come into contact with terminals 2b arranged on both sides of the second solar cell element 1b. When the actuator 46 contracts, the +Y direction ends of the pair of levers 45 move away from each other. The pair of probes 42 move away from terminals 2b arranged on both sides of the second solar cell element 1b. The actuator 46 can adjust the pressing force of the pair of probes 42 against the terminals 2b of the second solar cell element 1b. Because the pair of probes 42 are operated by a single actuator 46, the cost of the performance evaluation device 10 is reduced.
[0039] In the performance evaluation device 10 of the first modification, similarly to the first embodiment, the second solar cell element 1b and the resistor 41 are connected and disconnected. Before the second solar cell element 1b is transported, the connection between the second solar cell element 1b and the resistor 41 is disconnected. After the second solar cell element 1b is transported, the resistor 41 of the second solar cell element 1b adjacent in the -X direction to the second solar cell element 1b whose connection with the resistor 41 has been disconnected is connected to that second solar cell element 1b. The resistor 41 is connected to the plurality of second solar cell elements 1b in order.
[0040] (Second embodiment) 4 is a schematic diagram of a solar cell element performance evaluation apparatus 10 according to the second embodiment. The solar cell element performance evaluation apparatus 10 according to the second embodiment differs from the first embodiment in that a resistor 51 moves in synchronization with the first solar cell element 1a while connected to the first solar cell element 1a. Descriptions of the second embodiment that are similar to those of the first embodiment may be omitted. The solar cell element 1 of the second embodiment is the same as the first solar cell element 1a of the first embodiment.
[0041] The preparation unit 20 of the performance evaluation device 10 of the second embodiment includes a rotating member 50, a resistor 51, and a probe 52. The rotating member 50 is disposed in the +Z direction of the transport device 18. For example, the rotating member 50 is an endless caterpillar-like object. The surface of the rotating member 50 is covered with an insulating material. The rotating member 50 is rotatable parallel to the XZ plane.
[0042] A synchronous moving portion 54 is formed at the end of the rotating member 50 in the -Z direction. The synchronous moving portion 54 is movable in the +X direction in synchronization with the transport device 18. The synchronous moving portion 54 moves and stops at the same timing as the transport device 18. The synchronous moving portion 54 moves at the same speed as the transport device 18. The synchronous moving portion 54 is in a range that includes the preparation unit 20 in the X direction.
[0043] The resistor 51 can be connected to the first solar cell element 1a to form a closed circuit. The rotating member 50 holds a plurality of resistors 51 between endless caterpillar-like objects. The plurality of resistors 51 are arranged side by side in the circumferential direction of the rotating member 50 at the same pitch as the first solar cell element 1a. The probe 52 can connect the resistor 51 to the terminal 2a of the first solar cell element 1a.
[0044] The rotating member 50 holds a resistor 51 and a probe 52. The rotating member 50 is movable together with the probe 52 in the Z direction, which intersects with the surface of the terminal 2a of the first solar cell element 1a. As the rotating member 50 moves in the Z direction, the probe 52 can come into contact with and move away from the terminal 2a of the first solar cell element 1a.
[0045] The operation of the performance evaluation device 10 of the second embodiment will be described. The evaluation unit 11 evaluates the power generation performance of the first solar cell element 1a. The second light source 22 in the preparation unit 20 irradiates the first solar cell element 1a with light before it is transported to the evaluation unit 11. A resistor 51 held by the synchronously moving portion 54 of the rotating member 50 is connected to the first solar cell element 1a.
[0046] After evaluation of power generation performance in evaluation unit 11, transport device 18 transports first solar cell element 1a in the +X direction. Synchronous movement portion 54 of rotating member 50 moves in the +X direction in synchronization with transport device 18. Resistor 51, connected to first solar cell element 1a, moves in the +X direction in synchronization with first solar cell element 1a.
[0047] The first solar cell element 1a, which was at the end in the +X direction inside the preparation section 20, exits the preparation section 20. The resistor 51, which was connected to the exiting first solar cell element 1a, moves in the +Z direction as the rotating member 50 rotates, and exits the synchronously moving section 54. The connection between the first solar cell element 1a, which exits the preparation section 20, and the resistor 51, which exits the synchronously moving section 54, is released. The first solar cell element 1a, which was on the outside in the -X direction of the preparation section 20, enters the preparation section 20. As the rotating member 50 rotates, the resistor 51, which moves in the -Z direction, enters the synchronously moving section 54. The first solar cell element 1a, which has entered the preparation section 20, and the resistor 51, which has entered the synchronously moving section 54, are connected. Resistors 51 are connected to all of the first solar cell elements 1a in the preparation section 20.
[0048] The rotating member 50 moves in the -Z direction during rotation or after rotation has stopped. The probe 52 held by the rotating member 50 moves in the -Z direction. Even if a gap occurs between the terminal 2a of the first solar cell element 1a and the probe 52, the gap is eliminated by the movement of the probe 52 in the -Z direction. This improves the reliability of the connection between the first solar cell element 1a and the resistor 51.
[0049] As described above in detail, in the performance evaluation device 10 of the second embodiment, the resistor 51 moves in synchronization with the first solar cell element 1a while being connected to the first solar cell element 1a. Resistor 51, which has a resistance value corresponding to the maximum output of first solar cell element 1a, is continuously connected to first solar cell element 1a. Electrons or holes are efficiently consumed, and deterioration of first solar cell element 1a is suppressed.
[0050] The performance evaluation device 10 further includes an endless rotating member 50. The rotating member 50 includes a synchronously moving portion 54 that is movable in synchronization with the transport device 18. The rotation of the endless rotary member 50 continuously forms a synchronously moving portion 54. A resistor 51 is connected to all of the first solar cell elements 1a passing through the preparation section 20.
[0051] The rotating member 50 holds a resistor 51 and a probe 52 that can connect the resistor 51 to the first solar cell element 1a. The rotating member 50 is movable in the Z direction that intersects with the surface of the terminal 2a of the first solar cell element 1a. Even if a gap occurs between terminal 2a of first solar cell element 1a and probe 52, the gap is eliminated by moving probe 52 in the -Z direction, thereby improving the reliability of the connection between first solar cell element 1a and resistor 51.
[0052] (Third embodiment) 5 is a schematic diagram of a solar cell element performance evaluation apparatus 10 according to the third embodiment. The solar cell element performance evaluation apparatus 10 according to the third embodiment differs from the second embodiment in that a rotating member 60 holds a probe 62 that can connect between a cable 6 extending from a third solar cell element 1c and a resistor 61. Descriptions of the third embodiment that are similar to the first or second embodiment may be omitted.
[0053] The solar cell element 1 of the third embodiment is a third solar cell element 1c. The third solar cell element 1c is configured by arranging a plurality of cells, each containing a perovskite semiconductor, on a film substrate and connecting them to each other. The third solar cell element 1c is a flexible modular solar cell element. The third solar cell element 1c has a pair of cables 6. The cables 6 extend from the ends of the third solar cell element 1c in the -Y direction to the outside of the third solar cell element 1c. The cables 6 can electrically connect the third solar cell element 1c to the outside.
[0054] The preparation unit 20 of the performance evaluation device 10 of the third embodiment has a rotating member 60, a resistor 61, a probe 62, and a tensioning mechanism 70 (see FIG. 7). The rotating member 60 is disposed in the -Y direction of the conveying device 18. For example, the rotating member 60 is an endless wire. The rotating member 60 is rotatable parallel to the XZ plane. A synchronous moving portion 64 is formed at the end of the rotating member 60 in the -Z direction. The synchronous moving portion 64 is movable in the +X direction in synchronization with the conveying device 18. The synchronous moving portion 64 extends in the X direction from position A in the -X direction of the preparation unit 20 to position C in the +X direction of the evaluation unit 11. The rotating member 60 is also movable in the Z direction.
[0055] FIG. 6 is a development view of the periphery of the probe 62. As shown in FIG. The resistor 61 can be connected to the third solar cell element 1c to form a closed circuit. The resistor 61 is arranged away from the rotating member 60 in the -Y direction. A plurality of resistors 61 are arranged side by side in the X direction at the same pitch as the third solar cell element 1c (see FIG. 5). The resistor 61 has a pair of connection pads 61p. The connection pads 61p can electrically connect the resistor 61 to the outside. The surface of the connection pads 61p is parallel to the XY plane. The rotating member 60 can move in the Z direction which intersects with the surface of the connection pads 61p.
[0056] The probes 62 are held by the rotating member 60. A plurality of the probes 62 are arranged in a line in the circumferential direction of the rotating member 60 at the same pitch as the third solar cell elements 1c (see FIG. 5). The +Y-direction end of the probe 62 is connectable to the cable 6 of the third solar cell element 1c. The -Y-direction end of the probe 62 is contactable with the connection pad 61p of the resistor 61. This allows the probe 62 to connect the resistor 61 to the third solar cell element 1c. The probe 62 is capable of coming into contact with and moving away from the connection pad 61p of the resistor 61 as the rotating member 60 moves in the Z direction.
[0057] 5, the measurement unit 15 of the evaluation unit 11 of the performance evaluation device 10 has a pair of connection pads 15p. The connection pads 15p of the measurement unit 15 are located at the same positions as the connection pads 61p of the resistor 61 in the Y and Z directions. The probes 62 can come into contact with the connection pads 15p of the measurement unit 15. This allows the probes 62 to connect the measurement unit 15 to the third solar cell element 1c.
[0058] As described above, the third solar cell element 1c is flexible. When the third solar cell element 1c is bent, the transport device 18 cannot adsorb the third solar cell element 1c. When the third solar cell element 1c is bent, the first light source 12 and the second light source 22 cannot sufficiently irradiate the third solar cell element 1c with light. The tensioning mechanism 70 (see FIG. 7 ) pulls the third solar cell element 1c in the Y direction, which intersects with the −Z direction, which is the light irradiation direction of the first light source 12 and the second light source 22. The tensioning mechanism 70 pulls the third solar cell element 1c, which is supported by the transport device 18, in the Y direction to eliminate the bending of the third solar cell element 1c.
[0059] 7 is a plan view of the tensioning mechanism 70. The tensioning mechanism 70 has rotating belts 71 and 72 and a hook 75 (see FIG. 9). The third solar cell element 1c has through holes 5 at its four corners. The through holes 5 pass through the third solar cell element 1c in the Z direction. The tensioning mechanism 70 engages the hooks 75 with the through holes 5 to pull the third solar cell element 1c in the Y direction.
[0060] The rotating belts 71, 72 are rotatable generally parallel to the XZ plane. The rotating belts 71, 72 include a first rotating belt 71 and a second rotating belt 72. The first rotating belt 71 is disposed in the +Y direction of the conveying device 18. The second rotating belt 72 is disposed in the -Y direction of the conveying device 18. The rotating belts 71, 72 are disposed in the -Z direction of the third solar cell element 1c supported by the conveying device 18. Synchronous movement portions are formed at the ends of the rotating belts 71, 72 in the +Z direction. The synchronous movement portions are movable in the +X direction in synchronization with the conveying device 18. The synchronous movement portions are in a range in the X direction that includes the preparation unit 20 and the evaluation unit 11.
[0061] As shown in Fig. 5, positions A, B, and C are defined. Position A is the position in the -X direction of preparation unit 20. Position B is the position of third solar cell element 1c in evaluation unit 11. Position C is the position in the +X direction of evaluation unit 11.
[0062] The positions in the Y direction of the synchronously moving portions of the rotating belts 71, 72 are as follows. As shown in FIG. 7, the position in the Y direction of the synchronously moving portion of the second rotating belt 72 is constant. The synchronously moving portion of the first rotating belt 71 inclines in the +Y direction from position A to position B, and inclines in the -Y direction from position B to position C. The distances WA, WB, and WC in the Y direction between the synchronously moving portions of the first rotating belt 71 and the second rotating belt 72 are as follows. The distance WA at position A, the distance WB at position B, and the distance WC at position C satisfy the relationships WB>WA and WB>WC.
[0063] The position of the synchronously moving portions of rotating belts 71, 72 in the Z direction is constant, but they may be inclined as follows: The synchronously moving portions of rotating belts 71, 72 incline in the +Z direction from position A to position B, and incline in the -Z direction from position B to position C. The gap between the synchronously moving portions of rotating belts 71, 72 and third solar cell element 1c is narrow at position B and wide at positions A and C.
[0064] Fig. 8 is an enlarged view of a portion VIII at position A in Fig. 7. Fig. 9 is a cross-sectional view taken along line IX-IX in Fig. 8. The hooks 75 are fixed to the rotating belts 71, 72. The multiple hooks 75 are arranged side by side in the circumferential direction of the rotating belts 71, 72 at the same pitch as the through holes 5 of the third solar cell element 1c. In the synchronously moving portions of the rotating belts 71, 72, the hooks 75 are arranged in the +Z direction of the rotating belts 71, 72. The hooks 75 in the synchronously moving portion of the first rotating belt 71 extend from the first rotating belt 71 in the +Z direction and bend in the +Y direction. The hooks 75 in the synchronously moving portion of the second rotating belt 72 extend from the first rotating belt 71 in the +Z direction and bend in the -Y direction.
[0065] The operation of the performance evaluation device 10 of the third embodiment will be described. 5, after the evaluation of power generation performance in the evaluation unit 11, the rotating member 60 moves in the +Z direction. The probe 62 of the evaluation unit 11 moves away from the connection pad 15p of the measurement unit 15. The probe 62 of the preparation unit 20 moves away from the connection pad 61p of the resistor 61. Before the third solar cell element 1c is transported, the connection between the third solar cell element 1c and the resistor 61 is released.
[0066] The transport device 18 and the rotating member 60 also extend in the −X direction of the preparation unit 20. The worker connects the cable 6 of the third solar cell element 1c, which is at position A, to the probe 62 of the rotating member 60.
[0067] 8 and 9, hook 75 of the synchronously moving portion of rotating belts 71, 72 enters through hole 5 of third solar cell element 1c at position A. Hook 75 enters through hole 5 from the -Z direction of third solar cell element 1c. Because the top of hook 75 in the +Z direction is convex, hook 75 can easily enter through hole 5. At position A, hook 75 of the synchronously moving portion of rotating belts 71, 72 is at the center of through hole 5 in the Y direction.
[0068] 5 transports the third solar cell element 1c in the +X direction. The third solar cell element 1c after evaluation leaves the evaluation unit 11 to position C, and the third solar cell element 1c before evaluation enters the evaluation unit 11. The third solar cell element 1c that was at position A enters the preparation unit 20. In synchronization with the transport device 18, the synchronously moving portion 64 of the rotating member 60 moves in the +X direction.
[0069] As shown in FIG. 7, the synchronously moving portion of the first rotary belt 71 is inclined in the +Y direction from position A to position B.
[0070] FIG. 10 is an enlarged view of the X portion at position B in FIG. 7 . FIG. 11 is a cross-sectional view taken along line XI-XI in FIG. 10 . At position B, the hooks 75 of the synchronously moving portions of the rotating belts 71 and 72 protrude in the +Z direction of the through-hole 5 of the third solar cell element 1c. At position B, the hooks 75 of the synchronously moving portions of the first rotating belt 71 move to the +Y-direction end of the through-hole 5. The hooks 75 of the synchronously moving portions of the rotating belts 71 and 72 engage with the through-hole 5. The third solar cell element 1c is pulled in the Y direction by the hooks 75 of the synchronously moving portions of the rotating belts 71 and 72. At the evaluation unit 11 at position B shown in FIG. 7 , the deflection of the third solar cell element 1c is eliminated. At the evaluation unit 11, the transport device 18 can adsorb the third solar cell element 1c. At the evaluation unit 11, the third solar cell element 1c is sufficiently irradiated with light. In the preparation section 20 between positions A and B, the third solar cell element 1c is pulled in the Y direction as it is transported in the +X direction. In the preparation section 20 as well, the third solar cell element 1c is sufficiently irradiated with light.
[0071] As shown in FIG. 7, the synchronously moving portion of the first rotary belt 71 is inclined in the −Y direction from position B to position C.
[0072] 12 is an enlarged view of portion XII at position C in FIG. 7. FIG. 13 is a cross-sectional view taken along line XIII-XIII in FIG. 12. At position C, hook 75 of the synchronously moving portion of first rotating belt 71 moves to the -Y direction end of through hole 5. At position C, hook 75 of the synchronously moving portion of rotating belts 71, 72 exits through hole 5 of third solar cell element 1c in the -Z direction. Because the -Y direction end of hook 75 is inclined in the -Y direction toward the -Z direction, hook 75 easily exits through hole 5. Hook 75 of the synchronously moving portion of rotating belts 71, 72 is disengaged from through hole 5.
[0073] The worker disconnects the cable 6 of the third solar cell element 1c at position C from the probe 62 of the rotating member 60. The third solar cell element 1c is removed from the performance evaluation device 10 after evaluation.
[0074] The rotating member 60 moves in the -Z direction. The probe 62 of the evaluation unit 11 comes into contact with the connection pad 15p of the measurement unit 15. The probe 62 of the preparation unit 20 comes into contact with the connection pad 61p of the resistor 61. After the third solar cell element 1c is transported, the third solar cell element 1c and the resistor 61 are connected. After the third solar cell element 1c is transported, the resistor 61 of the third solar cell element 1c adjacent in the -X direction to the third solar cell element 1c, which was disconnected from the resistor 61 before the third solar cell element 1c was transported, is connected to that resistor 61. The resistor 61 is connected to the multiple third solar cell elements 1c in order.
[0075] As described above in detail, the solar cell element performance evaluation device 10 in the third embodiment further includes an endless rotating member 60. The rotating member 60 includes a synchronously moving portion 64 that is movable in synchronization with the transport device 18. The rotating member 60 holds a probe 62 that can connect between the cable 6 extending from the third solar cell element 1c and the resistor 61. The rotating member 60 is movable in the Z direction that intersects with the surface of the connection pad 61p of the resistor 61.
[0076] Cooperation between the rotating member 60 and the transport device 18 causes the resistors 61 to be connected to the plurality of third solar cell elements 1c in sequence. The number of resistors 61 matches the number of third solar cell elements 1c included in the preparation unit 20. Since only a small number of resistors 61 is required, the cost of the performance evaluation device 10 is reduced.
[0077] The probe 62 can connect the cable 6 extending from the third solar cell element 1c to the measuring unit 15 of the evaluation unit 11. With the cable 6 extending from the third solar cell element 1c connected to the probe 62, the third solar cell element 1c can be connected in turn to the resistor 61 of the preparation unit 20 and the measuring unit 15 of the evaluation unit 11. This reduces the evaluation time of the performance evaluation device 10.
[0078] The performance evaluation device 10 further includes a tensioning mechanism 70. The tensioning mechanism 70 tensions the third solar cell element 1c in the Y direction intersecting with the −Z direction in which the first light source 12 and the second light source 22 emit light. The bending of the third solar cell element 1c is eliminated. The transport device 18 can suction the third solar cell element 1c. The third solar cell element 1c is irradiated with sufficient light.
[0079] The solar cell element 1 is not limited to the first solar cell element 1a, the second solar cell element 1b, and the third solar cell element 1c. The performance evaluation device 10 can handle all solar cell elements 1 as long as the preparation unit 20 can connect a resistor to the solar cell element 1.
[0080] According to at least one of the embodiments described above, the performance evaluation device 10 has a preparation unit 20 that irradiates the solar cell element 1 with light before evaluating the power generation performance of the solar cell element 1 including a perovskite semiconductor. This allows the evaluation time of the performance evaluation device 10 to be shortened. In each embodiment, the solar cell element has been described as having two terminals, but it may have three terminals with a GND in between, or four terminals with two pairs of positive and negative terminals.
[0081] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, as well as within the scope of the invention described in the claims and their equivalents. [Explanation of symbols]
[0082] 1...solar cell element, 2...terminal, 3...cable, 10...performance evaluation device, 11...evaluation section, 12...first light source, 15p...connection pad, 18...transport device, 20...preparation section, 22...second light source, 30...support member, 31, 41, 51, 61...resistor, 32, 42, 52, 62...probe, 50, 60...rotating member, 61p...connection pad, 54, 64...synchronous moving part, 70...tensioning mechanism.
Claims
1. an evaluation unit having a first light source that irradiates light onto a solar cell element including a perovskite semiconductor and that evaluates the power generation performance of the solar cell element; a preparation unit that includes a second light source that irradiates light onto the solar cell elements before they are transported to the evaluation unit, and that prepares for evaluation of the power generation performance of the solar cell elements; a conveying device extending in a first direction from the preparation unit toward the evaluation unit, the transport device transports the solar cell element, which has been irradiated with light from the second light source in the preparation unit and whose power generation performance has been stabilized, to the evaluation unit; The second light source is an LED. A device for evaluating the performance of solar cell elements.
2. the preparation unit includes a resistor that can be connected to the solar cell element to form a closed circuit, the resistor consuming electrons or holes generated in the solar cell element by light irradiated from the second light source. The performance evaluation device for solar cell elements according to claim 1 .
3. An evaluation unit having a first light source that irradiates light onto a solar cell element including a perovskite semiconductor, and that evaluates the power generation performance of the solar cell element; a preparation unit that includes a second light source that irradiates light onto the solar cell elements before they are transported to the evaluation unit, and that prepares for evaluation of the power generation performance of the solar cell elements; a conveying device extending in a first direction from the preparation unit toward the evaluation unit, the preparation unit has a resistor that can be connected to the solar cell element to form a closed circuit, the resistor consuming electrons or holes generated in the solar cell element by light irradiated from the second light source; the transport device transports the solar cell element, whose power generation performance has been stabilized by being irradiated with light from the second light source in the preparation unit, to the evaluation unit. A device for evaluating the performance of solar cell elements.
4. The transport device supports the solar cell elements in a line and transports the solar cell elements to the evaluation unit in sequence. The performance evaluation device for solar cell elements according to claim 2 or 3.
5. Before the solar cell element is transported, the connection between the solar cell element and the resistor is released, the solar cell element adjacent to the solar cell element whose connection with the resistor has been released on the upstream side in the first direction is connected to the resistor after the solar cell element is transported. The performance evaluation device for solar cell elements according to claim 4.
6. the preparation unit includes the resistor and a probe capable of connecting the resistor to the solar cell element; the probe is movable in a direction intersecting the surface of the terminal of the solar cell element; The performance evaluation device for solar cell elements according to claim 5 .
7. The resistor moves in synchronization with the solar cell element while being connected to the solar cell element. The performance evaluation device for solar cell elements according to claim 4.
8. The conveying device further includes an endless rotating member including a portion that can move in synchronization with the conveying device. The performance evaluation device for solar cell elements according to claim 7.
9. the rotating member holds the resistor and a probe capable of connecting the resistor to the solar cell element; the rotating member is movable in a direction intersecting the surface of the terminal of the solar cell element; The performance evaluation device for solar cell elements according to claim 8.
10. an endless rotating member including a portion that can move in synchronization with the conveying device; the rotating member holds a probe that can connect between a cable extending from the solar cell element and the resistor; the rotating member is movable in a direction transverse to the surface of the connection pad of the resistor; The performance evaluation device for solar cell elements according to claim 5 .
11. the probe is connectable between a cable extending from the solar cell element and a connection pad of the evaluation unit; The performance evaluation device for solar cell elements according to claim 10.
12. The solar cell element may further include a tensioning mechanism configured to tension the solar cell element in a direction intersecting a light irradiation direction of the first light source and the second light source. The performance evaluation device for solar cell elements according to claim 10.
Citation Information
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