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重建近各向同性微结构以构建一维框架,从而在硫代磷酸盐中产生创纪录的双折射。

Reconstructing nearly isotropic microstructures to construct a one-dimensional framework causing record birefringence in thiophosphates.

作者信息

Jiang Lin-Tao, Jiang Xiao-Ming, Fan Yu-Hang, Liu Bin-Wen, Guo Guo-Cong

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences Fuzhou Fujian 350002 P. R. China

College of Chemistry, Fuzhou University Fuzhou Fujian 350116 P. R. China.

出版信息

Chem Sci. 2024 Sep 12;15(41):17114-9. doi: 10.1039/d4sc03683b.

Abstract

Infrared birefringent crystals that hold significant importance for optoelectronic application have been rarely reported. Traditional tetrahedral PS, ethane-like PS, and octahedral InS units in thiophosphates typically manifest near isotropy, often resulting in extremely small birefringence. However, this study prepares α-RbInPS (1), β-RbInPS (2), and CsInPS (3), consisting of the aforementioned microstructures, notably exhibiting the highest refractive index difference or birefringence values (0.247, 0.298, and 0.250 at 546 nm, respectively) among thiophosphates, the middle one being larger than that of commercial birefringent materials. This unusual increase in birefringence can be primarily attributed to two key factors: (1) simultaneous stretching and compressing of the P-S and In-S covalent bond interactions, generating high polarizability anisotropy of InS, PS, and PS polyhedral units; (2) the additional incorporation of alkali metals that further reduces the dimensionality of the crystal structure, creating one-dimensional [InPS] structures with increasing polarizability anisotropy. This study presents an alternative approach to enhance birefringent materials by reconstructing covalent bond interactions and specific spatial arrangements.

摘要

对光电子应用具有重要意义的红外双折射晶体鲜有报道。硫代磷酸盐中的传统四面体PS、乙烷类PS和八面体InS单元通常表现出近各向同性,常常导致双折射极小。然而,本研究制备了由上述微观结构组成的α-RbInPS(1)、β-RbInPS(2)和CsInPS(3),其在硫代磷酸盐中显著呈现出最高的折射率差或双折射值(在546nm处分别为0.247、0.298和0.250),其中β-RbInPS(2)的双折射值大于商用双折射材料。这种双折射的异常增加主要可归因于两个关键因素:(1)P-S和In-S共价键相互作用的同时拉伸和压缩,产生InS、PS和PS多面体单元的高极化率各向异性;(2)碱金属的额外掺入进一步降低了晶体结构的维度,形成具有不断增加的极化率各向异性的一维[InPS]结构。本研究提出了一种通过重建共价键相互作用和特定空间排列来增强双折射材料的替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e44/11498131/ccbc3ffb1504/d4sc03683b-f1.jpg

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