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Solution-processed all-oxide bulk heterojunction solar cells based on CuO nanaorod array and TiO2 nanocrystals

机译:基于Cuo Nanaorod阵列和TiO2纳米晶体的溶液加工的全氧化物散装杂交太阳能电池

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摘要

We present a method to synthesize CuO nanorodarray/TiO2 nanocrystals bulk heterojunction (BHJ) on fluorine-tin-oxide (FTO) glass, in which single-crystalline p-type semiconductor of the CuO nanorod array is grown on the FTO glass by hydrothermal reaction and the n-type semiconductor of the TiO2 precursor is filled into the CuO nanorods to form well-organized nano-interpenetrating BHJ after air annealing. The interface charge transfer in CuO nanorod array/TiO2 heterojunction is studied by Kelvin probe force microscopy (KPFM). KPFM results demonstrate that the CuO nanorod array/TiO2 heterojunction can realize the transfer of photo-generated electrons from the CuO nanorod array to TiO2. In this work, a solar cell with the structure FTO/CuO nanoarray/TiO2/Al is successfully fabricated, which exhibits an open-circuit voltage (V-oc) of 0.20 V and short-circuit current density (J(sc)) of 0.026mA cm(-2) under AM 1.5 illumination. KPFM studies indicate that the very low performance is caused by an undesirable interface charge transfer. The interfacial surface potential (SP) shows that the electron concentration in the CuO nanorod array changes considerably after illumination due to increased photo-generated electrons, but the change in the electron concentration in TiO2 is much less than in CuO, which indicates that the injection efficiency of the photo-generated electrons from CuO to TiO2 is not satisfactory, resulting in an undesirable J(sc) in the solar cell. The interface photovoltage from the KPFM measurement shows that the low V-oc results from the small interfacial SP difference between CuO and TiO2 because the low injected electron concentration cannot raise the Fermi level significantly in TiO2. This conclusion agrees with the measured work function results under illumination. Hence, improvement of the interfacial electron injection is primary for the CuO nanorod array/TiO2 heterojunction solar cells.
机译:我们提出了一种在氟 - 锡氧化物(FTO)玻璃上合成CuO纳米摩托阵列/ TiO2纳米晶体本体异质函数(BHJ)的方法,其中CuO纳米峰阵列的单晶P型半导体通过水热反应在FTO玻璃上生长将TiO 2前体的N型半导体填充到CuO纳米棒中,以在空气退火后形成良好有组织的纳米互穿的BHJ。 CuO nanorod阵列/ TiO2异质结中的界面电荷转移由Kelvin探针力学显微镜(KPFM)研究。 KPFM结果表明CUO纳米乐阵列/ TiO2异质结可以实现从CuO纳米峰阵列到TiO 2的光产生电子的转移。在这项工作中,成功制造了具有结构FTO / CUO纳米阵列/ TiO2 / Al的太阳能电池,其呈现出0.20 V和短路电流密度(J(SC))的开路电压(V-OC) am 1.5照明下0.026mA cm(-2)。 KPFM研究表明,非常低的性能是由不希望的界面电荷转移引起的。界面表面电位(SP)表明CUO纳米棒阵列中的电子浓度在由于增加的光生电子引起的照射后显着变化,但是TiO2中的电子浓度的变化远小于CUO,这表明注入来自CuO至TiO2的光生电电子的效率是不令人满意的,导致太阳能电池中的不希望的J(SC)。来自KPFM测量的界面光电压表明,低V-OC是CuO和TiO2之间的小界面SP差异,因为低注射的电子浓度不能在TiO 2中显着提高Fermi水平。该结论同意在照明下测量的工作功能结果。因此,界面电子注入的改进是Cuo Nanorod阵列/ TiO2异质结太阳能电池的主要。

著录项

  • 来源
    《Nanotechnology》 |2018年第21期|共8页
  • 作者单位

    Huzhou Univ Sch Sci Huzhou 313000 Zhejiang Peoples R China;

    South Dakota State Univ Dept Elect Engn &

    Comp Sci Ctr Adv Photovolta Brookings SD 57007 USA;

    South Dakota State Univ Dept Elect Engn &

    Comp Sci Ctr Adv Photovolta Brookings SD 57007 USA;

    South Dakota State Univ Dept Elect Engn &

    Comp Sci Ctr Adv Photovolta Brookings SD 57007 USA;

    South Dakota State Univ Dept Elect Engn &

    Comp Sci Ctr Adv Photovolta Brookings SD 57007 USA;

    Huzhou Univ Dept Chem Mat Huzhou 313000 Zhejiang Peoples R China;

    Huzhou Univ Sch Sci Huzhou 313000 Zhejiang Peoples R China;

    Huzhou Univ Sch Sci Huzhou 313000 Zhejiang Peoples R China;

    Huzhou Univ Sch Sci Huzhou 313000 Zhejiang Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    CuO nanorod array; TiO2; bulk heterojunction; solar cells;

    机译:CuO Nanorod阵列;TiO2;散装异质结;太阳能电池;

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