材料科学
钙钛矿(结构)
空间环境
光伏系统
耐久性
光电子学
航空航天
卤化物
退火(玻璃)
工程物理
纳米技术
航空航天工程
化学工程
电气工程
复合材料
无机化学
地质学
化学
地球物理学
工程类
作者
William Delmas,Samuel Erickson,Jorge Arteaga,Mark Woodall,M. Scheibner,Timothy S. Krause,Kyle Crowley,Kaitlyn VanSant,Joseph M. Luther,Jennifer N. Williams,Jeremiah McNatt,Timothy J. Peshek,Lyndsey McMillon‐Brown,Sayantani Ghosh
标识
DOI:10.1002/aenm.202203920
摘要
Abstract Metal halide perovskites (MHPs) have emerged as a prominent new photovoltaic material combining a very competitive power conversion efficiency that rivals crystalline silicon with the added benefits of tunable properties for multijunction devices fabricated from solution which can yield high specific power. Perovskites have also demonstrated some of the lowest temperature coefficients and highest defect tolerance, which make them excellent candidates for aerospace applications. However, MHPs must demonstrate durability in space which presents different challenges than terrestrial operating environments. To decisively test the viability of perovskites being used in space, a perovskite thin film is positioned in low earth orbit for 10 months on the International Space Station, which was the first long‐duration study of an MHP in space. Postflight high‐resolution ultrafast spectroscopic characterization and comparison with control samples reveal that the flight sample exhibits superior photo‐stability, no irreversible radiation damage, and a suppressed structural phase transition temperature by nearly 65 K, broadening the photovoltaic operational range. Further, significant photo‐annealing of surface defects is shown following prolonged light‐soaking postflight. These results emphasize that methylammonium lead iodide can be packaged adequately for space missions, affirming that space stressors can be managed as theorized.
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