材料科学
光伏
钙钛矿(结构)
四方晶系
光致发光
能量转换效率
光电子学
格子(音乐)
应变工程
卤化物
单层
锡
化学物理
凝聚态物理
纳米技术
光伏系统
工作(物理)
量子点
合金
薄膜
弹性能
量子效率
电压
半导体
作者
Jiaqi Liu,Hua̅n Bì,Liang Wang,Yasuhiro Fujiwara,Takeshi Kitamura,Shahrir Razey Sahamir,Suraya Shaban,Li Qiao,Sujun Ji,Safalmani Pradhan,Qing Shen,Shuzi Hayase
标识
DOI:10.1021/acsenergylett.6c00641
摘要
Tin-based halide perovskite solar cells offer a compelling lead-free alternative for sustainable photovoltaics; however, their performance is intrinsically limited by the facile oxidation of Sn 2+ and the resulting formation of tin vacancies. Here, we introduce an interface-engineered thermodynamic strategy to suppress intrinsic defect formation by imposing compressive lattice strain during film growth. A deliberately mismatched self-assembled monolayer (SAM) is employed as an active mechanical template, forcing Sn perovskite films to adopt a compressed tetragonal lattice. Structural analysis reveals in-plane lattice contraction accompanied by out-of-plane expansion, while first-principles calculations show that such strain increases the formation energy of Sn vacancies, enabling thermodynamic defect suppression. As a result, the strained films exhibit strongly reduced nonradiative recombination and a doubled photoluminescence quantum yield. In inverted SAM devices, this approach delivers a substantial open-circuit voltage enhancement and a power conversion efficiency of 14.8%. This work establishes mechanical strain engineering related to SAM as a general route to regulate defect chemistry in lead-free perovskites.
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