异构化
构象异构
材料科学
衍射
二次谐波产生
结晶学
相变
构象变化
Crystal(编程语言)
分子开关
极地的
相(物质)
晶体结构
非线性光学
化学物理
光化学
非线性光学
X射线晶体学
结晶
分子
化学
结构变化
分子构象
单晶
光电子学
工作(物理)
作者
Zheng Tang,Haosen Kang,Song Gao,Tianyao Pei,Dequan Jiang,Ke Liu,Long Zhang,Yonggang Wang
出处
期刊:Small
[Wiley]
日期:2025-11-28
卷期号:22 (4): e11678-e11678
被引量:2
标识
DOI:10.1002/smll.202511678
摘要
Abstract Second‐harmonic generation (SHG) switching materials are of great significance for advanced optoelectronic applications, and their design is often guided by the “anionic group theory”, which states that the nonlinear optical (NLO) effect of a material originates from microscopic polar groups and their geometric superposition. Therefore, external stimulus‐triggered structural transformations are recognized as an effective strategy to achieve SHG switching. However, pressure‐induced conformational isomerization is rarely reported in crystalline solids, which limits the development of pressure‐responsive SHG switches. Herein, pressure‐driven conformational isomerization is reported in a crown ether‐based molecular crystal, [APIm·18‐crown‐6][TFSI]·H 2 O (APIm = N‐(3‐aminopropyl)imidazolium, TFSI = bis(trifluoromethanesulfonyl)imide). A giant 206‐fold enhancement of the SHG signal at 0.4 GPa is attributed to the trans ‐to‐ cis conformational transition of partial TFSI anions, accompanied by dynamic disorder suppression of the TFSI anions. At the molecular level, the cis conformers contribute diffraction intensity at previously forbidden hkl planes, while the parent phase maintains the macroscopic symmetry, resulting in a mixed‐phase coexistence within the single crystal. Notably, it is extremely rare for an incomplete phase transition to induce such a dramatic SHG enhancement. This work enriches the understanding of the high‐pressure effect in molecular crystals and thereby offers a new design strategy for exceptional optoelectronic materials.
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