通量
钙钛矿(结构)
质子
辐射
辐照
太阳能电池
材料科学
散射
降级(电信)
辐射损伤
光电子学
钙钛矿太阳能电池
计算物理学
光学
物理
化学
核物理学
电子工程
结晶学
工程类
作者
Dang‐Thuan Nguyen,Daniel Walter,Klaus Weber,The Duong,Thomas P. White
标识
DOI:10.1002/aesr.202300085
摘要
Perovskite solar cell technology offers a promising power option for space applications due to its potential properties of high power‐to‐weight ratios and space‐radiation tolerance. Herein, a new simulation‐based method is introduced to predict the degradation of perovskite solar cells under proton radiation. The approach uses ion scattering simulations to generate depth‐dependent defect profiles as a function of proton energy and fluence, which are then incorporated into optoelectronic simulations to predict the degradation. The method to study the impact of perovskite compositions on radiation tolerance is applied and an inorganic perovskite CsPbI 2 Br and an organic–inorganic perovskite FAMAPbI 3 is compared. The simulations predict that CsPbI 2 Br and FAMAPbI 3 cells retain 62% and 65% of their initial efficiencies after a 100 keV fluence of 1e14 cm −2 , respectively. For comparison, unshielded III–V solar cells display similar degradation for proton fluences 3–4 orders of magnitude lower. It is also shown that the radiation direction must be considered when interpreting and predicting radiation tolerance, as the spatial overlap between photogenerated carriers and radiation‐induced defects has a significant impact on cell performance. Finally, a method to predict mission end‐of‐life performance of perovskite cells is demonstrated, taking into account the full proton radiation energy spectrum and fluence and the incident direction.
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