双折射
材料科学
二次谐波产生
各向异性
四面体
非线性光学
位阻效应
激光器
紫外线
光学
高次谐波产生
光电子学
Crystal(编程语言)
对称(几何)
锌
非线性光学
表面二次谐波产生
饱和吸收
结晶学
化学物理
氢键
锌酸盐
晶体结构
分子物理学
点反射
带隙
分子
作者
Qinghe Li,Lilin Yang,Hongyuan Sha,Dongling Yang,Zujian Wang,Xiaoming Yang,Rongbing Su,Ben‐Xun Su,Chao He,Xifa Long
摘要
ABSTRACT In the solar‐blind region, the development of short‐wave ultraviolet (UV) lasers relies critically on high‐performance nonlinear optical (NLO) crystals, which require a wide bandgap, a strong second harmonic generation (SHG) response, and a sufficient birefringence to fulfil phase‐matching requirements. Although sulfates possess a wide bandgap necessary for short‐wave UV applications, the inherent symmetry of [SO 4 ] 2− tetrahedron typically results in an insufficient birefringence. To optimize their birefringence, the introduction of π ‐conjugated ligands was implemented with a good structural inducer of 4‐hydroxypyridine group. It is an effective strategy to markedly augment the birefringence of sulfates as demonstrated in (C 5 H 5 NO) 2 ZnSO 4 ·H 2 O crystal with a birefringence of 0.48 @ 546 nm. Then, based on it, a new UV NLO crystal, (C 5 H 5 NO)ZnSO 4 ·3H 2 O, was obtained by modulating the coordination mode of zinc atoms to mitigate the steric hindrance and increase hydrogen bond sites. It achieves the collaborative optimization of SHG response (1.5 × KH 2 PO 4 (± 0.1)) and optical anisotropy (birefringence ∼ 0.27 @ 546 nm), originating from the synergetic contribution of 4‐hydroxypyridine ligands and [SO 4 ] 2− groups. Therefore, this study establishes an innovative strategy for the structural design and performance optimization in NLO materials.
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