Journal of Synthetic Crystals, Volume. 49, Issue 12, 2282(2020)

Simulation Study of ZnO(n)/ZnSe(i)/c-Si(p) Heterojunction Solar Cells

LUO Wei1,2 and DU Rui1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    References(13)

    [1] [1] Felix H, Christina H, Sren S, et al. Laser contact openings for local poly-Si-metal contacts enabling 26.1%-efficient POLO-IBC solar cells[J]. Solar Energy Materials and Solar Cells, 2018, 186: 184-193.

    [2] [2] Tanaka M, Taguchi M, Matsuyama T, et al. Development of new a-Si/c-Si heterojunction solar cells:ACT-HIT (artificially constructed junction-heterojunction with intrinsic thin layer)[J]. Japanese Journal of Appllied Physics, 1992, 31: 3518-3522.

    [4] [4] Zhao L, Zhou C L, Li H L, et al. Design optimization of bifacial HIT solar cells on p-type silicon substrates by simulation[J]. Solar Energy Material and Solar Cells, 2008, 92(6): 673-681.

    [5] [5] Dao V A, Heo J, Choi H, et al. Simulation and study of the influence of the bufier intrinsic layer, back-surface field, densities of interface defects, resistivity of p-type silicon substrate and transparent conductive oxide on heterojunction with intrinsic thin-layer(HIT) solar cell[J]. Solar Energy Material and Solar Cells, 2010, 84: 777-783.

    [6] [6] Yoshikawa K, Kawasaki K, Yoshida W, et al. Silicon Heterojunction solar cell with interdigitated back contacts for a photoconversion efficiency over 26%[J]. Nature Energy, 2017, 2: 17032.

    [8] [8] Chen L, Chen X L, Liu Y M, et al. Research on ZnO/Si heterojunction solar cells[J]. Journal of Semiconductors, 2017, 38(5): 66-76.

    [9] [9] Fenske F, Kliefoth K, Elstner L, et al. ZnO/c-Si heterojunction interface tuning by interlayers[J]. MRS Online Proceedings Library Archive, 1996, 426: 135.

    [10] [10] Varache R, Leendertz C, Gueunier-Farret M E, et al. Investigation of selective junctions using a newly developed tunnel current model for solar cell applications[J]. Solar Energy Materials and Solar Cells, 2015, 141: 14-23.

    [11] [11] Krichen M, Ben Arab A. Performance of thin silicon solar cells with a quasi-monocrystalline porous silicon layer on the rear side[J]. Applied Physics B, 2019, 125(10): 194.

    [12] [12] Lin Y R, Tan X, Liu A M. Influence of the asymmetrical defect state distribution at the a-Si∶H/c-Si interface on the performance of homo-heterojunction solar cells[J]. Surface Science, 2019, 682: 51-59.

    [13] [13] Yu M, Li Y Q, Cheng Q J, et al. Numerical simulation of graphene/GaAs heterojunction solar cells[J]. Solar Energy, 2019, 182: 453-461.

    [15] [15] Joshua A O, Mohammed Y O, Jessica A U, et al. Investigating the effect of ZnSe (ETM) and Cu2O (HTM) on absorber layer on the performance of pervoskite solar cell using SCAPS-1D[J]. American Journal of Physics and Applications, 2020, 8(1): 8-18.

    [17] [17] Cheng X M, Meng F Y, Wang J Q, et al. Simulation of heterojunction solar cells based on p-type silicon wafer[J]. Acta Energiae Sokaris Sinica, 2012, 33(9): 1474-1479.

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    LUO Wei, DU Rui. Simulation Study of ZnO(n)/ZnSe(i)/c-Si(p) Heterojunction Solar Cells[J]. Journal of Synthetic Crystals, 2020, 49(12): 2282

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    Paper Information

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    Received: --

    Accepted: --

    Published Online: Jan. 26, 2021

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    CSTR:32186.14.

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