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基于低温碳电极的无空穴传输层、无金属电极的TiO2/CH3NH3PbI3异质结太阳能电池

Hole-Conductor-Free, Metal-Electrode-Free TiO2/CH3NH3PbI3 Heterojunction Solar Cells Based on a Low-Temperature Carbon Electrode.

作者信息

Zhou Huawei, Shi Yantao, Dong Qingshun, Zhang Hong, Xing Yujin, Wang Kai, Du Yi, Ma Tingli

机构信息

†State Key Laboratory of Fine Chemicals, School of Chemistry, Dalian University of Technology, Dalian 116024, China.

‡Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology, 2-4 Hibikino, Wakamatsu, Kitakyushu, Fukuoka 808-0196, Japan.

出版信息

J Phys Chem Lett. 2014 Sep 18;5(18):3241-6. doi: 10.1021/jz5017069. Epub 2014 Sep 8.

Abstract

Low cost, high efficiency, and stability are straightforward research challenges in the development of organic-inorganic perovskite solar cells. Organolead halide is unstable at high temperatures or in some solvents. The direct preparation of a carbon layer on top becomes difficult. In this study, we successfully prepared full solution-processed low-cost TiO2/CH3NH3PbI3 heterojunction (HJ) solar cells based on a low-temperature carbon electrode. Power conversion efficiency of mesoporous (M-)TiO2/CH3NH3PbI3/C HJ solar cells based on a low-temperature-processed carbon electrode achieved 9%. The devices of M-TiO2/CH3NH3PbI3/C HJ solar cells without encapsulation exhibited advantageous stability (over 2000 h) in air in the dark. The ability to process low-cost carbon electrodes at low temperature on top of the CH3NH3PbI3 layer without destroying its structure reduces the cost and simplifies the fabrication process of perovskite HJ solar cells. This ability also provides higher flexibility to choose and optimize the device, as well as investigate the underlying active layers.

摘要

低成本、高效率和稳定性是有机-无机钙钛矿太阳能电池开发中直接面临的研究挑战。有机铅卤化物在高温或某些溶剂中不稳定。在其顶部直接制备碳层变得困难。在本研究中,我们基于低温碳电极成功制备了全溶液处理的低成本TiO2/CH3NH3PbI3异质结(HJ)太阳能电池。基于低温处理碳电极的介孔(M-)TiO2/CH3NH3PbI3/C HJ太阳能电池的功率转换效率达到了9%。未封装的M-TiO2/CH3NH3PbI3/C HJ太阳能电池器件在黑暗空气中表现出有利的稳定性(超过2000小时)。在不破坏CH3NH3PbI3层结构的情况下,能够在低温下在其顶部处理低成本碳电极,降低了成本并简化了钙钛矿HJ太阳能电池的制造工艺。这种能力还为选择和优化器件以及研究潜在的活性层提供了更高的灵活性。

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