A fabrication process for flexible single-crystal perovskite devices

被引:1
|
作者
Yusheng Lei
Yimu Chen
Ruiqi Zhang
Yuheng Li
Qizhang Yan
Seunghyun Lee
Yugang Yu
Hsinhan Tsai
Woojin Choi
Kaiping Wang
Yanqi Luo
Yue Gu
Xinran Zheng
Chunfeng Wang
Chonghe Wang
Hongjie Hu
Yang Li
Baiyan Qi
Muyang Lin
Zhuorui Zhang
Shadi A. Dayeh
Matt Pharr
David P. Fenning
Yu-Hwa Lo
Jian Luo
Kesong Yang
Jinkyoung Yoo
Wanyi Nie
Sheng Xu
机构
[1] University of California San Diego,Department of Nanoengineering
[2] Texas A&M University,Department of Mechanical Engineering
[3] University of California San Diego,Material Science and Engineering Program
[4] Los Alamos National Laboratory,Department of Electrical and Computer Engineering
[5] University of California San Diego,Department of Physics
[6] Tsinghua University,College of Physics and Optoelectronic Engineering
[7] Shenzhen University,Department of Bioengineering
[8] University of California San Diego,undefined
来源
Nature | 2020年 / 583卷
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摘要
Organic–inorganic hybrid perovskites have electronic and optoelectronic properties that make them appealing in many device applications1–4. Although many approaches focus on polycrystalline materials5–7, single-crystal hybrid perovskites show improved carrier transport and enhanced stability over their polycrystalline counterparts, due to their orientation-dependent transport behaviour8–10 and lower defect concentrations11,12. However, the fabrication of single-crystal hybrid perovskites, and controlling their morphology and composition, are challenging12. Here we report a solution-based lithography-assisted epitaxial-growth-and-transfer method for fabricating single-crystal hybrid perovskites on arbitrary substrates, with precise control of their thickness (from about 600 nanometres to about 100 micrometres), area (continuous thin films up to about 5.5 centimetres by 5.5 centimetres), and composition gradient in the thickness direction (for example, from methylammonium lead iodide, MAPbI3, to MAPb0.5Sn0.5I3). The transferred single-crystal hybrid perovskites are of comparable quality to those directly grown on epitaxial substrates, and are mechanically flexible depending on the thickness. Lead–tin gradient alloying allows the formation of a graded electronic bandgap, which increases the carrier mobility and impedes carrier recombination. Devices based on these single-crystal hybrid perovskites show not only high stability against various degradation factors but also good performance (for example, solar cells based on lead–tin-gradient structures with an average efficiency of 18.77 per cent).
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页码:790 / 795
页数:5
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