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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Enhancing the interfacial carrier dynamic in perovskite solar cells with an ultra-thin single-crystalline nanograss-like TiO2 electron transport layer
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Enhancing the interfacial carrier dynamic in perovskite solar cells with an ultra-thin single-crystalline nanograss-like TiO2 electron transport layer

机译:用超薄单晶纳米草状TiO2电子传输层增强钙钛矿太阳能电池中的界面载体动力学

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摘要

The efficient electron transfer at the interface of the electron transport layer (ETL) and perovskite, and the transportation along the ETL and collection at the electrode are characteristics that are critically governed by the properties of the ETL. Both characteristics are fundamental for the fabrication of high-performance perovskite solar cells (PSC). So far, mesoporous TiO2 might be considered a versatile ETL as its structure can provide an enormous heterojunction with the perovskite absorber. However, its inert (101) pore facet, massive dead-end pore structure, and extensive grain boundary with the underlying layers in the PSC device have made them unlikely to meet those basic criteria. Here, we have come up with a new design of TiO2 ETL that provides a high carrier dynamic in the device. It is a 3 nm thick high-energy (001) faceted single-crystalline nanograss-like structure (TNG) that is vertically grown on the ITO surface. With these unique structural properties, we achieved an enhanced carrier extraction from the perovskite layer, transportation along the ETL and collection at the electrode. Our results indicate that the charge-transfer dynamic at the TNG-perovskite interface and transport in the device are up to more than 2 times faster than those in the control device or in the recently reported results. With this property, we recorded a power conversion efficiency (PCE) as high as 21.60% (or at the level of 20.84% on average) from the TNG-based PSC with the device area as high as similar to 0.17 cm(2) using triple cation Cs-0.(05)[MA(0.13)FA(0.87)](0.95)Pb(I0.87Br0.13)(3) perovskites, an improvement as high as 18% from the control device. The TNG with its unique structure and surface chemistry may become a potential platform for the fabrication of a high-performance PSC device via combination with a high-performance perovskite system.
机译:电子传输层(ETL)和钙钛矿界面处的有效电子传递,以及沿电极的EtL和集合的运输是通过EtL的性质批判性地治理的特性。这两个特征都是制造高性能钙钛矿太阳能电池(PSC)的基础。到目前为止,中孔TiO2可能被认为是多功能ETL,因为其结构可以提供与钙钛矿吸收器的巨大的异质结。然而,其惰性(101)孔隙面,大规模的死端孔结构和PSC器件中的底层层的大晶界使它们不太可能满足这些基本标准。在这里,我们提出了一种新的TiO2 ETL设计,可在设备中提供高载波动态。它是3nm厚的高能量(001)刻面单晶纳米草状结构(TNG),其在ITO表面上垂直生长。利用这些独特的结构特性,我们实现了从钙钛矿层的增强型载体提取,沿ETL运输并在电极处收集。我们的结果表明,TNG-PEROVSKITE界面的电荷转移动态和设备中的运输量比控制装置中的TNG-PEROVSKITE界面和传输更快2倍以上,或者在最近报告的结果中的速度快2倍。通过此属性,我们从基于TNG的PSC录制了高达21.60%(或平均为20.84%的水平)的电力转换效率(或平均水平),使用设备面积高达0.17cm(2)使用三相阳离子Cs-0。(05)[MA(0.13)FA(0.87)](0.95)Pb(I0.87BR0.13)(3)钙钛矿,从控制装置的改善高达18%。具有其独特结构和表面化学的TNG可以成为通过与高性能Perovskite系统的组合制造高性能PSC器件的潜在平台。

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    Univ Kebangsaan Malaysia Inst Microengn &

    Nanoelect Ukm Bangi 43600 Selangor Malaysia;

    Fudan Univ Acad Engn &

    Technol Shanghai 200433 Peoples R China;

    Univ Kebangsaan Malaysia Inst Microengn &

    Nanoelect Ukm Bangi 43600 Selangor Malaysia;

    Univ Kebangsaan Malaysia Inst Microengn &

    Nanoelect Ukm Bangi 43600 Selangor Malaysia;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Univ Kebangsaan Malaysia Inst Microengn &

    Nanoelect Ukm Bangi 43600 Selangor Malaysia;

    Univ Kebangsaan Malaysia Inst Microengn &

    Nanoelect Ukm Bangi 43600 Selangor Malaysia;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    East China Normal Univ State Key Lab Precis Spect Shanghai 200062 Peoples R China;

    East China Normal Univ State Key Lab Precis Spect Shanghai 200062 Peoples R China;

    East China Normal Univ State Key Lab Precis Spect Shanghai 200062 Peoples R China;

    Fudan Univ Ctr Micro Nano Syst Sch Informat Sci &

    Technol SIST Shanghai 200433 Peoples R China;

    Fudan Univ Acad Engn &

    Technol Shanghai 200433 Peoples R China;

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