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Interfacial Energy Level Tuning for Efficient and Thermostable CsPbI2Br Perovskite Solar Cells

机译:高效稳定的CsPbI2Br钙钛矿太阳能电池的界面能级调整

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摘要

Inorganic mixed‐halide CsPbX ‐based perovskite solar cells (PeSCs) are emerging as one of the most promising types of PeSCs on account of their thermostability compared to organic–inorganic hybrid counterparts. However, dissatisfactory device performance and high processing temperature impede their development for viable applications. Herein, a facile route is presented for tuning the energy levels and electrical properties of sol–gel‐derived ZnO electron transport material (ETM) via the doping of a classical alkali metal carbonate Cs CO . Compared to bare ZnO, Cs CO ‐doped ZnO possesses more favorable interface energetics in contact with the CsPbI Br perovskite layer, which can reduce the ohmic loss to a negligible level. The optimized PeSCs achieve an improved open‐circuit voltage of 1.28 V, together with an increase in fill factor and short‐circuit current. The optimized power conversion efficiencies of 16.42% and 14.82% are realized on rigid glass substrate and flexible plastic substrate, respectively. A high thermostability can be simultaneously obtained via defect passivation at the Cs CO ‐doped ZnO/CsPbI Br interface, and 81% of the initial efficiency is retained after aging for 200 h at 85 °C.
机译:无机混合卤化物基于CsPbX的钙钛矿太阳能电池(PeSCs)由于其热稳定性优于有机-无机杂化太阳能电池而成为最有希望的PeSCs类型之一。然而,令人不满意的器件性能和高处理温度阻碍了它们在可行应用中的发展。在此,提出了一种通过掺杂经典碱金属碳酸盐Cs CO来调节溶胶-凝胶衍生的ZnO电子传输材料(ETM)的能级和电性能的简便途径。与裸露的ZnO相比,Cs CO掺杂的ZnO与CsPbI Br钙钛矿层接触时具有更有利的界面能,可以将欧姆损耗降低到可以忽略的水平。经过优化的PeSC可以将开路电压提高到1.28 V,并增加填充系数和短路电流。在刚性玻璃基板和柔性塑料基板上分别实现了16.42%和14.82%的最佳功率转换效率。在Cs CO掺杂的ZnO / CsPbI Br界面处通过缺陷钝化可以同时获得高的热稳定性,并且在85°C老化200 h后,仍保留了81%的初始效率。

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