Strain engineering and epitaxial stabilization of halide perovskites

被引:0
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作者
Yimu Chen
Yusheng Lei
Yuheng Li
Yugang Yu
Jinze Cai
Ming-Hui Chiu
Rahul Rao
Yue Gu
Chunfeng Wang
Woojin Choi
Hongjie Hu
Chonghe Wang
Yang Li
Jiawei Song
Jingxin Zhang
Baiyan Qi
Muyang Lin
Zhuorui Zhang
Ahmad E. Islam
Benji Maruyama
Shadi Dayeh
Lain-Jong Li
Kesong Yang
Yu-Hwa Lo
Sheng Xu
机构
[1] University of California San Diego,Department of Nanoengineering
[2] University of California San Diego,Materials Science and Engineering Program
[3] King Abdullah University of Science and Technology,Physical Science and Engineering Division
[4] Air Force Research Laboratory,Materials and Manufacturing Directorate
[5] Wright Patterson Air Force Base,Department of Electrical and Computer Engineering
[6] University of California San Diego,School of Materials Science and Engineering
[7] University of New South Wales,Department of Bioengineering
[8] University of California San Diego,undefined
来源
Nature | 2020年 / 577卷
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摘要
Strain engineering is a powerful tool with which to enhance semiconductor device performance1,2. Halide perovskites have shown great promise in device applications owing to their remarkable electronic and optoelectronic properties3–5. Although applying strain to halide perovskites has been frequently attempted, including using hydrostatic pressurization6–8, electrostriction9, annealing10–12, van der Waals force13, thermal expansion mismatch14, and heat-induced substrate phase transition15, the controllable and device-compatible strain engineering of halide perovskites by chemical epitaxy remains a challenge, owing to the absence of suitable lattice-mismatched epitaxial substrates. Here we report the strained epitaxial growth of halide perovskite single-crystal thin films on lattice-mismatched halide perovskite substrates. We investigated strain engineering of α-formamidinium lead iodide (α-FAPbI3) using both experimental techniques and theoretical calculations. By tailoring the substrate composition—and therefore its lattice parameter—a compressive strain as high as 2.4 per cent is applied to the epitaxial α-FAPbI3 thin film. We demonstrate that this strain effectively changes the crystal structure, reduces the bandgap and increases the hole mobility of α-FAPbI3. Strained epitaxy is also shown to have a substantial stabilization effect on the α-FAPbI3 phase owing to the synergistic effects of epitaxial stabilization and strain neutralization. As an example, strain engineering is applied to enhance the performance of an α-FAPbI3-based photodetector.
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页码:209 / 215
页数:6
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