Polymers and interfacial modifiers for durable perovskite solar cells: a review

被引:23
作者
Jones, Dennis [1 ]
An, Yu [1 ]
Hidalgo, Juanita [1 ]
Evans, Caria [1 ]
Vagott, Jacob N. [1 ]
Correa-Baena, Juan-Pablo [1 ]
机构
[1] Georgia Inst Technol, Sch Mat Sci & Engn, Atlanta, GA 30332 USA
关键词
HOLE-TRANSPORTING MATERIALS; DOPANT-FREE; CONJUGATED POLYMER; STABILITY; EFFICIENT; LAYER; PERFORMANCE; LIFETIME; POLY(3-HEXYLTHIOPHENE); DEGRADATION;
D O I
10.1039/d1tc01243f
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This review focuses on the advancements in stability of perovskite solar cells under stress from ambient moisture, high temperatures, and UV light exposure. Moisture stability has been improved by utilizing several polymeric encapsulation methods, moisture-resistant hole transport layers (HTLs), CF4 plasma treatments, and perovskite grain crosslinking. Fluorinated encapsulation methods have proven especially successful, producing cells that maintained their PCE after 75 days at 50% RH and 5 mW cm(-2) of UV radiation. Temperature destabilization has been hypothesized to occur as a result of perovskite phase transitions and the HTL dopant migration to the mesoporous TiO2 surface. Temperature-sensitive perovskites have been stabilized by tuning the Goldschmidt tolerance factor and introducing thermally resistant HTLs embedded in a polymeric matrix with polycarbonate acting as an effective thermal insulating matrix. UV light instabilities have also been shown to occur due to the photocatalysis of TiO2 and the TiO2 perovskite interface. The introduction of a Sb2S3 buffer or CsBr clusters as interface modifiers can stabilize the interface of TiO2 perovskite. Herein, we aim at highlighting the main processes that prevent perovskite degradation using polymers and interfacial modifiers.
引用
收藏
页码:12509 / 12522
页数:14
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