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Surface passivation engineering strategy to fully-inorganic cubic CsPbI3 perovskites for high-performance solar cells

机译:用于高性能太阳能电池的全无机立方晶CsPbI3钙钛矿的表面钝化工程策略

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摘要

Owing to inevitable thermal/moisture instability for organic–inorganic hybrid perovskites, pure inorganic perovskite cesium lead halides with both inherent stability and prominent photovoltaic performance have become research hotspots as a promising candidate for commercial perovskite solar cells. However, it is still a serious challenge to synthesize desired cubic cesium lead iodides (CsPbI3) with superior photovoltaic performance for its thermodynamically metastable characteristics. Herein, polymer poly-vinylpyrrolidone (PVP)-induced surface passivation engineering is reported to synthesize extra-long-term stable cubic CsPbI3. It is revealed that acylamino groups of PVP induce electron cloud density enhancement on the surface of CsPbI3, thus lowering surface energy, conducive to stabilize cubic CsPbI3 even in micrometer scale. The cubic-CsPbI3 PSCs exhibit extra-long carrier diffusion length (over 1.5 μm), highest power conversion efficiency of 10.74% and excellent thermal/moisture stability. This result provides important progress towards understanding of phase stability in realization of large-scale preparations of efficient and stable inorganic PSCs.
机译:由于有机-无机杂化钙钛矿不可避免的热/水分不稳定性,具有固有稳定性和出色光伏性能的纯无机钙钛矿铯卤化铅已成为研究热点,成为商业钙钛矿太阳能电池的有希望的候选者。然而,由于其热力学上的亚稳特性,合成具有优异的光伏性能的期望的碘化铯铯碘化物(CsPbI3)仍然是一个严峻的挑战。在本文中,据报道,聚合物聚乙烯吡咯烷酮(PVP)诱导的表面钝化工程合成了超长期稳定的立方CsPbI3。揭示了PVP的酰基氨基在CsPbI3的表面上引起电子云密度的增加,从而降低了表面能,甚至在微米尺度下也有利于稳定立方CsPbI3。立方-CsPbI3 PSC具有超长的载流子扩散长度(超过1.5μm),最高的功率转换效率10.74%和出色的热/湿稳定性。该结果为实现高效稳定的无机PSC的大规模制备中的相稳定性提供了重要的进展。

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