In situ interface engineering for probing the limit of quantum dot photovoltaic devices

被引:0
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作者
Hui Dong
Feng Xu
Ziqi Sun
Xing Wu
Qiubo Zhang
Yusheng Zhai
Xiao Dong Tan
Longbing He
Tao Xu
Ze Zhang
Xiangfeng Duan
Litao Sun
机构
[1] Southeast University,SEU
[2] Queensland University of Technology,FEI Nano
[3] Gardens Point,Pico Center, Key Laboratory of MEMS of Ministry of Education, Collaborative Innovation Center for Micro/Nano Fabrication, Device and System
[4] East China Normal University,School of Chemistry, Physics and Mechanical Engineering
[5] Southeast University,Department of Electrical Engineering
[6] Zhejiang University,Joint International Research Laboratory of Information Display and Visualization, School of Electronic Science and Engineering
[7] California NanoSystems Institute,Department of Materials Science and Engineering, State Key Laboratory of Silicon Materials
[8] University of California,Department of Chemistry and Biochemistry
[9] Southeast University–Monash University Joint Research Institute,Key Laboratory of Welding Robot and Application Technology of Hunan Province, Engineering Research Center of Complex Tracks Processing Technology and Equipment of Ministry of Education
[10] Xiangtan University,undefined
来源
Nature Nanotechnology | 2019年 / 14卷
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摘要
Quantum dot (QD) photovoltaic devices are attractive for their low-cost synthesis, tunable band gap and potentially high power conversion efficiency (PCE). However, the experimentally achieved efficiency to date remains far from ideal. Here, we report an in-situ fabrication and investigation of single TiO2-nanowire/CdSe-QD heterojunction solar cell (QDHSC) using a custom-designed photoelectric transmission electron microscope (TEM) holder. A mobile counter electrode is used to precisely tune the interface area for in situ photoelectrical measurements, which reveals a strong interface area dependent PCE. Theoretical simulations show that the simplified single nanowire solar cell structure can minimize the interface area and associated charge scattering to enable an efficient charge collection. Additionally, the optical antenna effect of nanowire-based QDHSCs can further enhance the absorption and boost the PCE. This study establishes a robust ‘nanolab’ platform in a TEM for in situ photoelectrical studies and provides valuable insight into the interfacial effects in nanoscale solar cells.
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页码:950 / 956
页数:6
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