双折射
材料科学
正交晶系
结晶学
各向异性
单晶
Crystal(编程语言)
晶体结构
碱金属
光学各向异性
透明度(行为)
光学透明度
联轴节(管道)
密度泛函理论
离子
四面体
光学材料
光电子学
金属
光学
倾斜(摄像机)
非线性光学
作者
Du Yinxia,C J Huang,Hongshan Wang,Linan Wang,Z Chen,Miriding Mutailipu,Shilie Pan,J F Li
摘要
ABSTRACT Designing high‐performance birefringent materials that simultaneously achieve large birefringence, a wide transparency range, and favorable crystal growth habits remains a critical yet challenging objective in polarized optical devices. Herein, two new interhalogens AICl 2 (A = NH 4 , Rb), were rationally designed by coupling [NH 4 ] + and alkali metal ions with linear dihalide units and fabricated by solution methods. Both compounds crystallize in the orthorhombic Pnma space group and comprise linear [ICl 2 ] units. The well‐aligned [ICl 2 ] units in the structures induce large birefringence: 0.75 for RbICl 2 and 0.70 for NH 4 ICl 2 at 546 nm, respectively, which are 3.7/3.4 times larger than that of commercial birefringent crystal YVO 4 (0.204@546 nm). A high‐quality RbICl 2 single crystal (1.1 × 0.5 × 0.2 cm 3 ), exhibiting a wide transparency window extending from 0.50 to 25 µm, was grown via room‐temperature solution crystallization. Theoretical calculations reveal that the optical anisotropy is governed by the anisotropic electron density distribution within the [ICl 2 ] unit and the ordered arrangement of these units, confirming it as an advantageous birefringence‐active motif. The results highlight the inorganic interhalogen as an emerging system for the design of high‐performance photoelectric functional materials, with RbICl 2 as a promising birefringent material.
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