稳定、高效的钙钛矿太阳能电池的晶片级单层MoS 2薄膜集成

IF 44.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Science Pub Date : 2025-01-09 DOI:10.1126/science.ado2351
Huachao Zai, Pengfei Yang, Jie Su, Ruiyang Yin, Rundong Fan, Yuetong Wu, Xiao Zhu, Yue Ma, Tong Zhou, Wentao Zhou, Yu Zhang, Zijian Huang, Yiting Jiang, Nengxu Li, Yang Bai, Cheng Zhu, Zhaohui Huang, Jingjing Chang, Qi Chen, Yanfeng Zhang, Huanping Zhou
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引用次数: 0

摘要

钙钛矿太阳能电池(PSCs)商业化的主要挑战之一是实现高功率转换效率(PCE)和足够的稳定性。我们通过转移工艺在钙钛矿层的顶部和底部集成了晶圆级连续单层MoS 2缓冲器。这些膜在物理上阻止钙钛矿离子迁移到载流子输运层,并通过强配位相互作用在化学上稳定了甲脒-碘化铅相。有效的化学钝化是由于Pb-S键的形成,少数载流子通过i型带排列被阻挡。具有MoS 2 /钙钛矿/MoS 2结构的平面p-i-n PSCs(0.074平方厘米)和模块(9.6平方厘米)的PCE分别达到26.2%(认证稳态PCE为25.9%)和22.8%。此外,该器件表现出优异的湿热(85°C和85%相对湿度)稳定性,1200小时后PCE损失为<;5%;高温(85°C)运行稳定性,1200小时后PCE损失为<;4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wafer-scale monolayer MoS2 film integration for stable, efficient perovskite solar cells
One of the primary challenges in commercializing perovskite solar cells (PSCs) is achieving both high power conversion efficiency (PCE) and sufficient stability. We integrate wafer-scale continuous monolayer MoS2 buffers at the top and bottom of a perovskite layer through a transfer process. These films physically block ion migration of perovskite into carrier transport layers and chemically stabilize the formamidinium lead iodide phase through strong coordination interaction. Effective chemical passivation results from the formation of Pb-S bonds, and minority carriers are blocked through a type-I band alignment. Planar p-i-n PSCs (0.074 square centimeters) and modules (9.6 square centimeters) with MoS2/perovskite/MoS2 configuration achieve PCEs up to 26.2% (certified steady-state PCE of 25.9%) and 22.8%, respectively. Moreover, the devices show excellent damp heat (85°C and 85% relative humidity) stability with <5% PCE loss after 1200 hours and notable high temperature (85°C) operational stability with <4% PCE loss after 1200 hours.
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来源期刊
Science
Science 综合性期刊-综合性期刊
CiteScore
61.10
自引率
0.90%
发文量
0
审稿时长
2.1 months
期刊介绍: Science is a leading outlet for scientific news, commentary, and cutting-edge research. Through its print and online incarnations, Science reaches an estimated worldwide readership of more than one million. Science’s authorship is global too, and its articles consistently rank among the world's most cited research. Science serves as a forum for discussion of important issues related to the advancement of science by publishing material on which a consensus has been reached as well as including the presentation of minority or conflicting points of view. Accordingly, all articles published in Science—including editorials, news and comment, and book reviews—are signed and reflect the individual views of the authors and not official points of view adopted by AAAS or the institutions with which the authors are affiliated. Science seeks to publish those papers that are most influential in their fields or across fields and that will significantly advance scientific understanding. Selected papers should present novel and broadly important data, syntheses, or concepts. They should merit recognition by the wider scientific community and general public provided by publication in Science, beyond that provided by specialty journals. Science welcomes submissions from all fields of science and from any source. The editors are committed to the prompt evaluation and publication of submitted papers while upholding high standards that support reproducibility of published research. Science is published weekly; selected papers are published online ahead of print.
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