钝化
光伏
钙钛矿(结构)
载流子寿命
卤化物
光致发光
材料科学
半导体
降级(电信)
光电子学
光伏系统
纳米技术
化学
图层(电子)
硅
无机化学
结晶学
生物
电信
计算机科学
生态学
作者
Silvia G. Motti,Daniele Meggiolaro,Alex J. Barker,Edoardo Mosconi,Carlo A. R. Perini,James M. Ball,Marina Gandini,Minkwan Kim,Filippo De Angelis,Annamaria Petrozza
出处
期刊:Nature Photonics
[Nature Portfolio]
日期:2019-05-27
卷期号:13 (8): 532-539
被引量:343
标识
DOI:10.1038/s41566-019-0435-1
摘要
Metal halide perovskites have become a popular material system for fabricating photovoltaics and various optoelectronic devices. However, long-term reliability must be assured. Instabilities are manifested as light-induced ion migration and segregation, which can lead to material degradation. Discordant reports have shown a beneficial role of ion migration under illumination, leading to defect healing. By combining ab initio simulations with photoluminescence measurements under controlled conditions, we demonstrate that photo-instabilities are related to light-induced formation and annihilation of defects acting as carrier trap states. We show that these phenomena coexist and compete. In particular, long-living carrier traps related to halide defects trigger photoinduced material transformations, driving both processes. Defect formation can be controlled by blocking under-coordinated surface sites, which act as a defect reservoir. By use of a passivation strategy we are thus able to stabilize the perovskite layer, leading to improved optoelectronic material quality and enhanced photostability in solar cells. The photo-instability of perovskite solar cells is investigated and controlled by the use of a passivation strategy.
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