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高度扭曲的[HgS] motif驱动的结构对称性退化及缺陷类金刚石硫族化物HgPS中增强的二次谐波产生响应

Highly Distorted [HgS] Motif-Driven Structural Symmetry Degradation and Strengthened Second-Harmonic Generation Response in the Defect Diamond-Like Chalcogenide HgPS.

作者信息

Xing Wenhao, Liang Fei, Tang Chunlan, Uykur Ece, Lin Zheshuai, Yao Jiyong, Yin Wenlong, Kang Bin

机构信息

Beijing Center for Crystal Research and Development, Key Lab of Functional Crystals and Laser Technology, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, P. R. China.

Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621900, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Aug 11;13(31):37331-37338. doi: 10.1021/acsami.1c06933. Epub 2021 Jul 28.

Abstract

Chalcogenides with diamond-like (DL) structures are a treasury of infrared nonlinear optical (NLO) materials. Here, a ternary Hg-based chalcogenide with a defect DL structure, HgPS, is synthesized by solid-state reaction. Driven by the highly distorted [HgS] tetrahedra, this compound displays an interesting structural symmetry degradation from tetragonal to orthorhombic compared with its analogue ZnPS. Meanwhile, the overall performances of HgPS are quite remarkable, including a very strong phase-matchable second-harmonic generation (SHG) response (4.2 × AgGaS), large band gap (2.77 eV), wide IR transparent range (0.45-16.7 μm), and high laser-induced damage threshold (4 × AGS). Furthermore, the theoretical analysis and local dipole moment calculations elucidate that the highly distorted [HgS] tetrahedra contribute a lot to the enhancement of the SHG effect. This discovery will motivate the exploration of other DL Hg-based chalcogenides serving as high-performing mid-IR NLO materials.

摘要

具有类金刚石(DL)结构的硫族化物是红外非线性光学(NLO)材料的宝库。在此,通过固相反应合成了一种具有缺陷DL结构的三元汞基硫族化物HgPS。受高度扭曲的[HgS]四面体驱动,与类似物ZnPS相比,该化合物表现出从四方到正交的有趣结构对称性降解。同时,HgPS的整体性能相当出色,包括非常强的可相位匹配二次谐波产生(SHG)响应(4.2×AgGaS)、大带隙(2.77 eV)、宽红外透明范围(0.45 - 16.7μm)和高激光诱导损伤阈值(4×AGS)。此外,理论分析和局部偶极矩计算表明,高度扭曲的[HgS]四面体对SHG效应的增强贡献很大。这一发现将推动探索其他作为高性能中红外NLO材料的DL汞基硫族化物。

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