材料科学
共晶体系
晶界
结晶
量子效率
退火(玻璃)
钙钛矿(结构)
能量转换效率
光致发光
卤化物
光电子学
钙钛矿太阳能电池
粒度
化学工程
纳米晶
量子产额
光激发
晶粒生长
薄膜
矿物学
晶体生长
作者
Jason J. Yoo,Connor J. Dolan,Seongsik Nam,Jinho Lee,Kyu Min Kang,Bong Joo Kang,Rushik Desai,Niranjana Mohan-Kumar,Arkita Chakrabarti,DaeSoo Kim,Jang Hee Cho,Donghyuk Chung,Jack R. Palmer,Kelly X Vences,Zhewen J. D. Deng,Yanqi Luo,Barry Chi Hong Lai,Tao Zhou,Zhonghou Cai,Martin Victor Holt
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-10-08
卷期号:394 (6820): 228-233
标识
DOI:10.1126/science.aeb4554
摘要
Improvements to the radiative efficiency of halide perovskite thin films are necessary to approach fundamental solar cell performance limits. We tailored perovskite crystallization by leveraging the eutectic interaction between zinc bromide and methylammonium chloride additives. The resulting films had high photoluminescence quantum yield and charge carrier decay times and low surface recombination velocity. Nanoprobe x-ray microscopy revealed local melting of the eutectic at grain boundaries during annealing that reduced intragranular structural defect density. Annealing also homogenized the halide distribution and caused zinc segregation to grain boundaries. Solar cells fabricated with the volatile eutectic reached 26.5% power conversion efficiency (PCE, certified 25.9%), and perovskite minimodules (areas more than 15 square centimeters) had 23.9% PCE. Small-area cells with a poly[bis(4-phenyl)(2,4,6-trimethylphenyl)amine] hole transporter retained 85.8% of their initial 24.1% PCE after 1400 hours of continuous operation at 85°C. Furthermore, this approach enables 26.1% external quantum efficiency as light-emitting diodes.
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