Pressure-Modulated Anomalous Organic–Inorganic Interactions Enhance Structural Distortion and Second-Harmonic Generation in MHyPbBr3 Perovskite

卤化物 化学 钙钛矿(结构) 八面体 带隙 相变 异质结 化学物理 氢键 结晶学 无机化学 纳米技术 光电子学 晶体结构 分子 材料科学 凝聚态物理 有机化学 物理
作者
Yuhong Mao,Songhao Guo,Huang Xu,Kejun Bu,Zhongyang Li,Phuong Q. H. Nguyen,Gang Liu,Qingyang Hu,Dongzhou Zhang,Yongping Fu,Wenge Yang,Xujie Lü
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:145 (43): 23842-23848 被引量:32
标识
DOI:10.1021/jacs.3c09375
摘要

Organic-inorganic halide perovskites possess unique electronic configurations and high structural tunability, rendering them promising for photovoltaic and optoelectronic applications. Despite significant progress in optimizing the structural characteristics of the organic cations and inorganic framework, the role of organic-inorganic interactions in determining the structural and optical properties has long been underappreciated and remains unclear. Here, by employing pressure tuning, we realize continuous regulation of organic-inorganic interactions in a lead halide perovskite, MHyPbBr3 (MHy+ = methylhydrazinium, CH3NH2NH2+). Compression enhances the organic-inorganic interactions by strengthening the Pb-N coordinate bonding and N-H···Br hydrogen bonding, which results in a higher structural distortion in the inorganic framework. Consequently, the second-harmonic-generation (SHG) intensity experiences an 18-fold increase at 1.5 GPa, and the order-disorder phase transition temperature of MHyPbBr3 increases from 408 K under ambient pressure to 454 K at the industrially achievable level of 0.5 GPa. Further compression triggers a sudden non-centrosymmetric to centrosymmetric phase transition, accompanied by an anomalous bandgap increase by 0.44 eV, which stands as the largest boost in all known halide perovskites. Our findings shed light on the intricate correlations among organic-inorganic interactions, octahedral distortion, and SHG properties and, more broadly, provide valuable insights into structural design and property optimization through cation engineering of halide perovskites.
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