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Employing 2D-Perovskite as an Electron Blocking Layer in Highly Efficient (18.5) Perovskite Solar Cells with Printable Low Temperature Carbon Electrode

机译:采用2D钙钛矿作为高效(18.5)钙钛矿太阳能电池的电子阻挡层,具有可打印的低温碳电极

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摘要

Interface engineering and passivating contacts are key enablers to reach the highest efficiencies in photovoltaic devices. While printed carbon-graphite back electrodes for hole-transporting material (HTM)-free perovskite solar cells (PSCs) are appealing for fast commercialization of PSCs due to low processing costs and extraordinary stability, this device architecture so far suffers from severe performance losses at the back electrode interface. Herein, a 2D perovskite passivation layer as an electron blocking layer (EBL) at this interface to substantially reduce interfacial recombination losses is introduced. The formation of the 2D perovskite EBL is confirmed through X-ray diffraction, photoemission spectroscopy, and an advanced spectrally resolved photoluminescence microscopy mapping technique. Reduced losses that lead to an enhanced fill factor and V-OC are quantified by electrochemical impedance spectroscopy and J(SC)-V-OC measurements. This enables reaching one of the highest reported efficiencies of 18.5 for HTM-free PSCs using 2D perovskite as an EBL with a significantly improved device stability.
机译:界面工程和钝化触点是实现光伏设备最高效率的关键因素。虽然用于无空穴传输材料 (HTM) 钙钛矿太阳能电池 (PSC) 的印刷碳石墨背电极由于加工成本低和非凡的稳定性而对 PSC 的快速商业化很有吸引力,但到目前为止,这种器件架构在背电极界面上存在严重的性能损失。本文介绍了一种二维钙钛矿钝化层作为该界面处的电子阻挡层(EBL),以大大降低界面复合损耗。通过X射线衍射、光发射光谱和先进的光谱分辨光致发光显微成像技术证实了二维钙钛矿EBL的形成。通过电化学阻抗谱和J(SC)-V-OC测量来量化降低损耗,从而提高填充因子和V-OC。这使得使用2D钙钛矿作为EBL的无HTM的PSC达到18.5%的最高效率之一,并显著提高了器件的稳定性。

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