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Fully inorganic cesium lead halide perovskites with improved stability for tandem solar cells

机译:完全无机铯铅卤化物钙锌矿,具有改善的串联太阳能电池稳定性

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A semiconductor that can be processed on a large scale with a bandgap around 1.8 eV could enable the manufacture of highly-efficient low cost double-junction solar cells. Solution-processable organic-inorganic halide perovskites have recently generated considerable excitement as absorbers in single-junction solar cells, and while it is possible to tune the bandgap of (CH_3NH_3)Pb(Br_xI_(1-x))3 between 2.3 and 1.6 eV by controlling the halide concentration, optical instability due to photo-induced phase segregation limits the voltage that can be extracted from compositions with appropriate bandgaps for tandem applications. Moreover, these materials have been shown to suffer from thermal degradation at temperatures within the processing and operational window. By replacing the volatile methylammonium cation with cesium, it is possible to synthesize a mixed halide absorber material with improved optical and thermal stability, a stabilized photoconversion efficiency of 6.5%, and a bandgap of 1.9 eV.
机译:可以在大约1.8eV的带隙的大规模上处理的半导体可以使得能够制造高效的低成本双结太阳能电池。溶液可加工的有机 - 无机卤化物钙钛矿最近在单结太阳能电池中产生了相当大的兴奋,虽然可以调整(CH_3NH_3)Pb(BR_3NH_3)Pb(BR_XI_(1-x))3之间的带隙,而在2.3和1.6eV之间通过控制卤化物浓度,由于光诱导的相分离引起的光学不稳定性限制了可以用适当的带隙的组合物中提取的电压用于串联应用。此外,这些材料已被证明在加工和操作窗口内的温度下遭受热劣化。通过用铯替代挥发性甲基铵阳离子,可以合成具有改善的光学和热稳定性的混合卤化物吸收材料,稳定的光电转换效率为6.5%,以及1.9eV的带隙。

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