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首页> 外文期刊>Energy & environmental science >High-performance quantum dot-sensitized solar cells based on sensitization with CuInS_2 quantum dots/CdS heterostructure
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High-performance quantum dot-sensitized solar cells based on sensitization with CuInS_2 quantum dots/CdS heterostructure

机译:基于CuInS_2量子点/ CdS异质结构敏化的高性能量子点敏化太阳能电池

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摘要

A high-performance quantum dot-sensitized solar cell (QDSSC) is reported, which consists of a TiO_2/ CuInS_2-QDs/CdS/ZnS photoanode, a polysulfide electrolyte, and a CuS counter electrode. The sensitization process involves attaching presynthesized CuInS_2 QDs (3.5 nm) to a TiO_2 substrate with a bifunctional linker, followed by coating CdS with successive ionic layer adsorption and reaction (SILAR) and ZnS as the last SILAR layer for passivation. This process constructs a sensitizing layer that comprises CdS nanocrystals, closely packed around the earlier-linked CuInS_2 QDs, which serve as the pillars of the layer. The CuS counter electrode, prepared via successive ionic solution coating and reaction, has a small charge transfer resistance in the polysulfide electrolyte. The QDSSC exhibits a short-circuit photocurrent (J_(sc)) of 16.9 mA cm~(-2), an open-circuit photovoltage (V_(oc)) of 0.56 V, a fill factor of 0.45, and a conversion efficiency of 4.2% under one-sun illumination. The heterojunction between the CuInS_2 QDs and CdS extends both the optical absorption and incident photon conversion efficiency (IPCE) spectra of the cell to a longer wavelength of approximately 800 nm, and provides an IPCE of nearly 80% at 510 nm. The high TiO_2 surface coverage of the sensitizers suppresses recombination of the photogenerated electrons. This results in a longer lifetime for the electrons, and therefore, the high V_(oc) value. The notably high J_(SC) and V_(oc) values demonstrate that this sensitization strategy, which exploits the quantum confinement reduction and other synergistic effects of the CuInS_2-QDs/CdS/ZnS heterostructure, can potentially outperform those of other QDSSCs.
机译:据报道,一种高性能量子点敏化太阳能电池(QDSSC)由TiO_2 / CuInS_2-QDs / CdS / ZnS光电阳极,多硫化物电解质和CuS对电极组成。敏化过程包括将预合成的CuInS_2 QDs(3.5 nm)连接到具有双功能接头的TiO_2衬底上,然后用连续的离子层吸附和反应(SILAR)涂覆CdS,并用ZnS作为最后的SILAR层进行钝化。此过程构建了一个敏化层,该敏化层包含CdS纳米晶体,紧密包裹在较早连接的CuInS_2 QD周围,而CuInS_2 QD充当该层的支柱。通过连续的离子溶液涂覆和反应制备的CuS对电极在聚硫电解质中具有较小的电荷转移电阻。 QDSSC的短路光电流(J_(sc))为16.9 mA cm〜(-2),开路光电压(V_(oc))为0.56 V,填充系数为0.45,转换效率为在日光照射下为4.2%。 CuInS_2 QD和CdS之间的异质结将电池的光吸收和入射光子转换效率(IPCE)光谱扩展到大约800 nm的更长波长,并在510 nm提供近80%的IPCE。敏化剂的高TiO_2表面覆盖率可抑制光生电子的复合。这导致电子的寿命更长,因此,V_(oc)值高。极高的J_(SC)和V_(oc)值表明,利用CuInS_2-QDs / CdS / ZnS异质结构的量子限制降低和其他协同效应的这种敏化策略可能会优于其他QDSSC。

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  • 来源
    《Energy & environmental science》 |2012年第1期|p.5315-5324|共10页
  • 作者单位

    Department of Chemical Engineering and Research Center for Energy Technology and Strategy, National Cheng Kung University, Tainan,70101, Taiwan;

    rnDepartment of Chemical Engineering and Research Center for Energy Technology and Strategy, National Cheng Kung University, Tainan,70101, Taiwan;

    rnDepartment of Chemical Engineering and Research Center for Energy Technology and Strategy, National Cheng Kung University, Tainan,70101, Taiwan,Center for Micro/Nano Science and Technology, National Cheng Kung University, Tainan, 70101, Taiwan;

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