SOLAR CELL AND PHOTOVOLTAIC MODULE
    2.
    发明公开

    公开(公告)号:US20240090245A1

    公开(公告)日:2024-03-14

    申请号:US18272027

    申请日:2021-11-23

    CPC classification number: H10K30/40 H10K39/10

    Abstract: The present disclosure relates to the field of photovoltaic technologies. Disclosed are a solar cell and a photovoltaic module. The solar cell includes: an absorption layer; and an energy selective contact layer located on a surface of the absorption layer, the energy selective contact layer having selectivity for electron energy or hole energy, and the material of the energy selective contact layer including a low-dimensional perovskite material. According to the solar cell and the photovoltaic module provided by the present disclosure, a photovoltaic module can be manufactured.

    SOLAR CELL, PREPARATION METHOD FOR SOLAR CELL, AND PHOTOVOLTAIC MODULE

    公开(公告)号:US20230337444A1

    公开(公告)日:2023-10-19

    申请号:US18028491

    申请日:2021-12-07

    CPC classification number: H10K30/10 H10K30/50 H10K71/311 H10K2101/70

    Abstract: A solar cell, a preparation method for a solar cell, and a photovoltaic module, relating to the technical field of solar energy photovoltaics. The solar cell includes a crystalline silicon cell unit, and a down-conversion luminescence layer and a perovskite layer sequentially located on the light-facing surface of the crystalline silicon cell unit. The band gap of the perovskite layer becomes gradually smaller in the direction from the light-facing surface to the back surface. The band gap at the back surface of the perovskite layer is greater than or equal to the band gap of an absorption layer of the crystalline silicon cell unit. Because the band gap gradually decreases from large to small, the perovskite layer features a wide absorption spectrum, a long charge carrier free path, higher luminous efficiency, thus being able to broaden the spectral absorption range of the solar cell, and improve energy use and conversion efficiency. The complex processing of multi-layer battery superposition is avoided, the multiple film layer structure is simplified, losses in transmission of charge carriers between film layer interfaces and series structures are avoided, the conversion efficiency of the solar cell is further improved, and the processing difficulty is reduced, facilitating industrial production.

    LAMINATED SOLAR CELL AND PHOTOVOLTAIC ASSEMBLY

    公开(公告)号:US20240341107A1

    公开(公告)日:2024-10-10

    申请号:US18294040

    申请日:2022-05-26

    CPC classification number: H10K30/40 H10K30/57 H10K30/87 H10K85/50

    Abstract: A tandem solar cell and a photovoltaic assembly, The tandem solar cell includes: a top-layer perovskite sub-cell and a bottom-layer crystalline-silicon sub-cell, and an optical regulating layer provided between the top-layer perovskite sub-cell and the bottom-layer crystalline-silicon sub-cell. After the part of the target light rays that are not absorbed by the top-layer perovskite sub-cell have passed through the top-layer perovskite sub-cell, because the optical regulating layer can be used to reflect at least some of the target light rays back into the top-layer perovskite sub-cell, at least some of the target light rays can enter the top-layer perovskite sub-cell again to perform secondary absorption, which prevents that the target light rays within the short-wave wave band directly enter the bottom-layer crystalline-silicon sub-cell having a low utilization ratio of the target light rays within the short-wave wave band, thereby increasing the efficiency of the tandem solar cell.

    PEROVSKITE CELL AND PHOTOVOLTAIC MODULE
    6.
    发明公开

    公开(公告)号:US20240251575A1

    公开(公告)日:2024-07-25

    申请号:US18294872

    申请日:2022-05-10

    CPC classification number: H10K30/82 H10K30/40 H10K39/10

    Abstract: Provided are a perovskite cell and a photovoltaic module. The perovskite cell includes a perovskite light absorption layer, a first carrier transport layer, a second carrier transport layer, a first transparent electrode layer, a second transparent electrode layer, and an optical adjustment layer, wherein the optical adjustment layer is arranged between the second carrier transport layer and the second transparent electrode layer; and the transmittance of the optical adjustment layer for visible light is greater than or equal to a preset transmittance, and the reflectivity of the optical adjustment layer for infrared light is greater than or equal to a preset reflectivity.

    STACKED PHOTOVOLTAIC DEVICE
    9.
    发明申请

    公开(公告)号:US20240373657A1

    公开(公告)日:2024-11-07

    申请号:US18686581

    申请日:2022-05-26

    Abstract: A tandem photovoltaic device includes a perovskite absorbing layer, a crystalline silicon absorbing layer and a single-layer electrical function layer connected in series to the two absorbing layers; a contact interface between the perovskite absorbing layer and the single-layer electrical function layer is a first series interface; and a contact interface between the crystalline silicon absorbing layer and the single-layer electrical function layer is a second series interface; wherein a conducting type at the second series interface is different from a conducting type at the first series interface, and the difference between the work functions is ≥−0.3 eV and ≤0.3 eV.

    TANDEM PHOTOVOLTAIC DEVICE
    10.
    发明公开

    公开(公告)号:US20240006546A1

    公开(公告)日:2024-01-04

    申请号:US18037286

    申请日:2021-12-08

    CPC classification number: H01L31/02363 H01L31/0687

    Abstract: Provided is a tandem photovoltaic device comprising: a top cell, a bottom cell, and a first light-trapping structure, in stacking, wherein a band-gap width of the top cell is larger than that of the bottom cell; and at least one of a second light-trapping structure located on a side of a shading surface of the bottom cell and a third light-trapping structure located on a side of a phototropic surface of the top cell; the three light-trapping structures are selected from metal or semiconductor material, and localized surface plasmons generated by the three light-trapping structures correspond to different peaks of light-wave response; and the three light-trapping structures form microstructures on a first cross section, average sizes d1, d2 and d3 of projections of the microstructures and average distances w1, w2 and w3 between the microstructures have relationships:





    2




    (


    w

    1


    w

    2


    )

    2

    ·


    d

    2


    d

    1




    16

    ,


    and
    /
    or


    2





    (


    w

    3


    w

    1


    )

    2

    ·


    d

    1


    d

    3




    16.

Patent Agency Ranking