BIFACIAL PUNCHED PERC SOLAR CELL AND MODULE, SYSTEM, AND PREPARATION METHOD THEREOF

20200381572 ยท 2020-12-03

    Inventors

    Cpc classification

    International classification

    Abstract

    A bifacial punched PERC solar cell comprises a rear silver busbar (1), a rear aluminum finger (2), a rear passivation layer (3), a P-type silicon (4), an N-type emitter (5), a front passivation layer (6), a front silver finger (7), and a front silver busbar (8), a laser grooving region (9) is formed in the rear passivation layer by laser grooving; the rear aluminum finger line is connected to the P-type silicon via the laser grooving region, the bifacial PERC solar cell is provided with a light transmitting region (10) penetrating front and rear surfaces of the cell. A method of preparing a bifacial punched PERC solar cell and a module and a system employing the solar cell are also provided. The solar cell can be employed to increase back reflection for sunlight and significantly improve photoelectric conversion efficiency at the rear side of the cell.

    Claims

    1. A bifacial punched PERC solar cell, comprising: a rear silver busbar; a rear aluminum finger; a rear passivation layer; a P-type silicon; an N-type emitter; a front passivation layer; a front silver finger; and a front silver busbar; a laser grooving region formed in the rear passivation layer by laser grooving, the rear aluminum finger line being connected to the P-type silicon via the laser grooving region; and a light transmitting region penetrating front and rear surfaces of the bifacial punched PERC solar cell, the light transmitting region being disposed outside the rear silver busbar and the front silver busbar, the light transmitting region being surrounded by the rear aluminum finger or being disposed outside the rear aluminum finger, and the light transmitting region being surrounded by the front silver finger or being disposed outside the front silver finger; wherein the front silver finger includes a first front silver finger and a second front silver finger, and the second front silver finer bypasses the light transmitting region and is in contact with the first front silver finger.

    2. The bifacial punched PERC solar cell according to claim 1, wherein the size of the light transmitting region is smaller than a width of the rear aluminum finger line and is greater than a width of the front silver finger line.

    3. The bifacial punched PERC solar cell according to claim 1, wherein the first front silver finger line is linear and the second front silver finger line is arc-shaped.

    4. The bifacial punched PERC solar cell according to claim 1, wherein the light transmitting region is a circular hole, a square hole, a pentagonal hole or a hexagonal hole.

    5. The bifacial punched PERC solar cell according to claim 1, wherein a number of the light transmitting regions is 2 to 100.

    6. The bifacial punched PERC solar cell according to claim 1, wherein a size of the light transmitting region is 100 micron to 5 centimeter.

    7. The bifacial punched PERC solar cell according to claim 6, wherein a width of the rear aluminum finger line is 150 micron to 5.5 centimeter and the width of the front silver finger line is 30-80 micron.

    8. A method of preparing the bifacial punched PERC solar cell, comprising: performing laser punching to a silicon wafer to form a light transmitting region; forming textured surfaces at front and rear surfaces of the silicon wafer; performing diffusion via the front surface of the silicon wafer to form an N-type emitter; removing phosphosilicate glass formed during the diffusion; forming a passivation layers on the front and rear surfaces of the silicon wafer; performing laser grooving in the rear surface of the silicon wafer; printing a rear silver busbar on the rear surface of the silicon wafer, wherein the rear silver busbar is printed outside the light transmitting region; printing a rear aluminum finger on the rear surface of the silicon wafer, wherein the rear aluminum finger is printed surrounding the light transmitting region or besides the light transmitting region; printing a front silver busbar and a front silver finger on the front surface of the silicon wafer, wherein the front silver busbar is printed outside the light transmitting region and wherein the front silver finger is printed surrounding the light transmitting region or besides the light transmitting region, the front silver finger includes a first front silver finger and a second front silver finger, and the second front silver finer bypasses the light transmitting region and is in contact with the first front silver finger; sintering the silicon wafer to form a rear silver electrode and a front silver electrode; performing anti-LID annealing on the silicon wafer; laser-isolating a periphery of the silicon wafer and a periphery of the light transmitting region.

    9. A PERC solar cell module, comprising a PERC solar cell and a packaging material, wherein the PERC solar cell is the bifacial punched PERC solar cell including: a rear silver busbar; a rear aluminum finger; a rear passivation layer; a P-type silicon; an N-type emitter; a front passivation layer; a front silver finger; and a front silver busbar; a laser grooving region formed in the rear passivation layer by laser grooving, the rear aluminum finger line being connected to the P-type silicon via the laser grooving region; and a light transmitting region penetrating front and rear surfaces of the bifacial punched PERC solar cell, the light transmitting region being disposed outside the rear silver busbar and the front silver busbar, the light transmitting region being surrounded by the rear aluminum finger or being disposed outside the rear aluminum finger, and the light transmitting region being surrounded by the front silver finger or being disposed outside the front silver finger.

    10-12. (canceled)

    13. A PERC solar system, comprising a PERC solar cell, the PERC solar cell a bifacial punched PERC solar cell that includes: a rear silver busbar; a rear aluminum finger; a rear passivation layer; a P-type silicon; an N-type emitter; a front passivation layer; a front silver finger; and a front silver busbar; a laser grooving region formed in the rear passivation layer by laser grooving, the rear aluminum finger line being connected to the P-type silicon via the laser grooving region; and a light transmitting region penetrating front and rear surfaces of the bifacial punched PERC solar cell, the light transmitting region being disposed outside the rear silver busbar and the front silver busbar, the light transmitting region being surrounded by the rear aluminum finger or being disposed outside the rear aluminum finger, and the light transmitting region being surrounded by the front silver finger or being disposed outside the front silver finger; wherein the front silver finger includes a first front silver finger and a second front silver finger, and the second front silver finger bypasses the light transmitting region and is in contact with the first front silver finger.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0040] FIG. 1 is a sectional view of the solar cell of the present invention;

    [0041] FIG. 2 is a schematic diagram of an embodiment of the rear surface structure of the solar cell of the present invention;

    [0042] FIG. 3 is a schematic diagram of another embodiment of the rear surface structure of the solar cell of the present invention;

    [0043] FIG. 4 is a schematic diagram of an embodiment of the front surface structure of the solar cell of the present invention;

    [0044] FIG. 5 is a schematic diagram of another embodiment of the front surface structure of the solar cell of the present invention.

    DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS

    [0045] To more clearly illustrate the objectives, technical solutions and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

    [0046] In view of FIGS. 1-5, the present invention provides a bifacial punched PERC solar cell, which comprises a rear silver busbar 1, a rear aluminum finger 2, a rear passivation layer 3, a P-type silicon 4, an N-type emitter 5, a front passivation layer 6, a front silver finger 7, and a front silver busbar 8; wherein a laser grooving region 9 is formed in the rear passivation layer 3 by laser grooving, the rear aluminum finger line is connected to the P-type silicon 4 via the laser grooving region 9.

    [0047] The bifacial PERC solar cell is provided with a light transmitting region 10 penetrating front and rear surfaces of the cell.

    [0048] The light transmitting region 10 is disposed outside the rear silver busbar 1 and the front silver busbar 8. The light transmitting region cannot affect the rear silver busbar 1 and the front silver busbar 8, otherwise, soldering when the cell is packaged into a module will be affected.

    [0049] The light transmitting region 10 is disposed on the rear aluminum finger 2 or outside the rear aluminum finger 2. The light transmitting region 10 may have two implementations at the rear surface of the cell, as specifically seen in FIGS. 2-3. As shown in FIG. 2, it shows an embodiment of the rear surface structure of the solar cell, in which the light transmitting region 10 is disposed on the rear aluminum finger 2 and the size of the light transmitting region 10 is smaller than the width of the rear aluminum finger 2. As shown in FIG. 3, it shows another embodiment of the rear surface structure of the solar cell, in which the light transmitting region 10 is disposed outside the rear aluminum finger 2, and the size of the light transmitting region 10 may be greater than the width of the rear aluminum finger 2, or may also be equal to the width of the rear aluminum finger 2, or may further be smaller than the width of the rear aluminum finger 2.

    [0050] The light transmitting region 10 is disposed on the front silver finger 7 or outside the front silver finger 7. The light transmitting region 10 may have two implementations at the front surface of the cell, as specifically seen in FIGS. 4-5. As shown in FIG. 4, it shows an embodiment of the front surface structure of the solar cell, in which the light transmitting region 10 is disposed on the front silver finger 7, and the size of the light transmitting region 10 is greater than the width of the front silver finger 7. If the light transmitting region 10 is disposed on the front silver finger 7, the front silver finger 7 includes a first front silver finger 71 and a second front silver finger 72. The second front silver finger 72 bypasses the light transmitting region 10 and is in contact with the first front silver finger 71. Preferably, the first front silver finger 71 is linear, and the second front silver finger 72 is arc-shaped.

    [0051] It should be noted that the first front silver finger 71 may also be in other shapes, such as a wave shape, a zigzag shape, etc., and the second front silver finger 72 may also be in other shapes, such as a curved shape, a triangular shape, a quadrangular shape, a semicircular shape, etc. The embodiments of the first front silver finger 71 and the second front silver finger 72 are not limited to those in the present invention as long as the connection can be achieved.

    [0052] As shown in FIG. 5, it shows another embodiment of the front surface structure of the solar cell, in which the light transmitting region 10 is disposed outside the front silver finger 7 and the size of the light transmitting region 10 may be greater than the width of the front silver finger 7 or may also be equal to the width of the front silver finger 7.

    [0053] It should be noted that, in the embodiments shown in FIGS. 2-5, the shape, number and size of the light transmitting region 10, the rear silver busbar 1, the rear aluminum finger 2, the front silver finger 7 and the front silver busbar 8 can be defined according to actual needs and the implementation is not limited to the embodiments enumerated in the present invention.

    [0054] In the present invention, a light transmitting region 10 is provided. The sunlight incident on the front surface may be irradiated to the rear surface of the solar cell module via the light transmitting region of the cell, and then reflected to the rear surface of the solar cell by a reflective medium at the rear surface of the bifacial solar cell module. As a result, sunlight being back reflected is increased and thereby photoelectric conversion efficiency at the rear side of the cell is significantly improved. Photoelectric conversion efficiency at the rear side of the cell may be improved by 1%-10% (relative value). Moreover, in the present invention, the number of the rear silver busbar 1, the rear aluminum finger 2, the front silver finger 7 and the front silver busbar 8 can be reduced by providing the light transmitting region 10, while still being able to achieve the same or even higher photoelectric conversion efficiency, such that the dosage of silver paste and aluminum paste may be effectively reduced. As a result, cost is saved.

    [0055] Preferably, it is more reasonable in structure design and easier to be implemented in industrialization, if the size of the light transmitting region 10 is smaller than the width of the rear aluminum finger 2 and greater than the width of the front silver finger 7.

    [0056] Preferably, the light transmitting region 10 is a circular hole, a square hole, a pentagonal hole or a hexagonal hole. More preferably, the light transmitting region 10 is a circular hole or an equilateral polygon hole. It should be noted that the light transmitting region 10 of the present invention can also be in other shapes, such as an octagonal hole, a dodecagonal hole or an irregularly polygonal hole, and the implementation is not limited to the embodiments enumerated in the present invention.

    [0057] Preferably, the number of the light transmitting regions 10 is 2 to 100, the size of the light transmitting region 10 is 100 micron to 5 centimeter, the width of the rear aluminum finger 2 is 150 micron to 5.5 centimeter and the width of the front silver finger 7 is 30-80 micron. More preferably, the number of the light transmitting regions 10 is 10-50, the size of the light transmitting region 10 is 120 micron to 4 centimeter, the width of the rear aluminum finger 2 is 185 micron to 4.5 centimeter and the width of the front silver finger 7 is 40-70 micron.

    [0058] Preferably, the rear passivation layer 3 comprises an aluminum oxide layer 31 and a silicon nitride layer 32, the aluminum oxide layer 31 is connected to the P-type silicon 4, and the silicon nitride layer 32 is connected to the aluminum oxide layer 31; the thickness of the silicon nitride layer 32 is 20 to 500 nm; the thickness of the aluminum oxide layer 31 is 2 to 50 nm.

    [0059] Preferably, the front passivation layer 6 is a front silicon nitride layer.

    [0060] Accordingly, the present invention also discloses a method of preparing a bifacial punched PERC solar cell, comprising:

    [0061] S101: selecting the P-type silicon and performing laser punching to the silicon wafer to form a light transmitting region;

    [0062] S102: forming textured surfaces at a front surface and a rear surface of the silicon wafer;

    [0063] S103: performing diffusion via the front surface of the silicon wafer to form the N-type emitter;

    [0064] S104: removing phosphosilicate glass formed during the diffusion;

    [0065] S105: forming the passivation layers on the front and rear surfaces of the silicon wafer;

    [0066] The step S105 includes: (A) depositing an aluminum oxide (Al.sub.2O.sub.3) film on the rear surface of the silicon wafer; (B) depositing a silicon nitride film on the rear surface of the silicon wafer; and (C) depositing a silicon nitride film on the front surface of the silicon wafer. It should be noted that the sequence of C with respect to A and B can be interchanged, and C can be performed before A and B.

    [0067] S106: performing laser grooving in the rear surface of the silicon wafer;

    [0068] S107: printing the rear silver busbar on the rear surface of the silicon wafer, wherein the rear silver busbar is printed outside the light transmitting region;

    [0069] S109: printing the rear aluminum finger on the rear surface of the silicon wafer, wherein the rear aluminum finger is printed surrounding the light transmitting region or outside the light transmitting region;

    [0070] S110: printing the front silver busbar and the front silver finger on the front surface of the silicon wafer, wherein the front silver busbar is printed outside the light transmitting region;

    [0071] the front silver finger is printed surrounding the light transmitting region or outside the light transmitting region; if the light transmitting region is provided on the front silver finger, the front silver finger includes a first front silver finger and a second front silver finger, the second front silver finger bypasses the light transmitting region and is in contact with the first front silver finger;

    [0072] S111: sintering the silicon wafer at a high temperature to form a rear silver electrode and a front silver electrode;

    [0073] S112: performing anti-LID annealing on the silicon wafer;

    [0074] S113: laser-isolating the periphery of the silicon wafer and the periphery of the light transmitting region.

    [0075] The preparation method of the present invention further includes performing a polishing treatment on the rear surface of the silicon wafer, which step is performed after the step S104 of removing phosphosilicate glass formed during the diffusion. It should be noted that the polishing treatment on the rear surface may be performed as needed, and the polishing treatment on the rear surface may be subjected or not subjected in the present invention.

    [0076] Accordingly, the present invention also discloses a PERC solar cell module, which includes a PERC solar cell and a packaging material, wherein the PERC solar cell is any one of the bifacial punched PERC solar cells described above. Specifically, as one embodiment of the PERC solar cell module, it is composed of a high-transmittance tempered glass, a first layer of ethylene-vinyl acetate (EVA) copolymer, a PERC solar cell, a second layer of an ethylene-vinyl acetate (EVA) copolymer, and a backboard which are sequentially connected from top to bottom.

    [0077] Accordingly, the present invention also discloses a PERC solar system, which includes a PERC solar cell that is any one of the bifacial punched PERC solar cells described above. As a preferred embedment of the PERC solar system, it includes a PERC solar cell, a rechargeable battery pack, a charge and discharge controller, an inverter, an AC power distribution cabinet, and a sun-tracking control system. The PERC solar system therein may be provided with or without a rechargeable battery pack, a charge and discharge controller, and an inverter. Those skilled in the art can adopt different settings according to actual needs.

    [0078] It should be noted that in the PERC solar cell module and the PERC solar system, components other than the bifacial punched PERC solar cell may be designed with reference to the prior art.

    [0079] Finally, it should be noted that the above embodiments are only intended to illustrate the technical solutions of the present invention and are not intended to limit the protection scope of the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, it should be appreciated by those skilled in the art that the technical solutions of the present invention may be modified or equivalently substituted without departing from the spirit and scope of the technical solutions of the present invention.