材料科学
应变工程
钙钛矿(结构)
太阳能电池
弯曲
格子(音乐)
拉伤
残余物
微晶
光电子学
凝聚态物理
化学物理
结晶学
化学
硅
复合材料
物理
生物
计算机科学
解剖
冶金
声学
算法
作者
Cheng Zhu,Xiuxiu Niu,Yuhao Fu,Nengxu Li,Chen Hu,Yihua Chen,Xin He,Guangren Na,Pengfei Liu,Huachao Zai,Yang Ge,Yue Lu,Xiaoxing Ke,Yang Bai,Shihe Yang,Pengwan Chen,Yujing Li,Manling Sui,Lijun Zhang,Huanping Zhou,Qi Chen
标识
DOI:10.1038/s41467-019-08507-4
摘要
The mixed halide perovskites have emerged as outstanding light absorbers for efficient solar cells. Unfortunately, it reveals inhomogeneity in these polycrystalline films due to composition separation, which leads to local lattice mismatches and emergent residual strains consequently. Thus far, the understanding of these residual strains and their effects on photovoltaic device performance is absent. Herein we study the evolution of residual strain over the films by depth-dependent grazing incident X-ray diffraction measurements. We identify the gradient distribution of in-plane strain component perpendicular to the substrate. Moreover, we reveal its impacts on the carrier dynamics over corresponding solar cells, which is stemmed from the strain induced energy bands bending of the perovskite absorber as indicated by first-principles calculations. Eventually, we modulate the status of residual strains in a controllable manner, which leads to enhanced PCEs up to 20.7% (certified) in devices via rational strain engineering.
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