双折射
各向异性
化学
极化(电化学)
Crystal(编程语言)
结晶学
热稳定性
光学
有机化学
物理
物理化学
计算机科学
程序设计语言
作者
Yaoguo Shen,Yan Liu,Xin‐Yi Wang,Zhifeng Tang,Liang Ma,Guofa Dong
标识
DOI:10.1021/acs.inorgchem.5c01932
摘要
Large optical anisotropy stands as the paramount characteristic of birefringent crystals, and the introduction of planar π-conjugated groups is a widely recognized approach for synthesizing crystals with excellent optical anisotropy. However, the pivotal challenge lies in controlling the orientation and spatial arrangement of the birefringent active groups. Through the introduction of a novel phenyl-melamine [C9H10N5]+ unit, four birefringent crystals─namely C9H11N5(NO3)2, (C9H10N5)Br, (C9H10N5)Cl·H2O, and (C9H10N5)BF4·H2O─have been successfully synthesized. These crystals exhibit notable birefringence values of 0.27, 0.49, 0.42, and 0.57 at 550 nm, respectively. Notably, the birefringence values of the latter three compounds surpass those of commercially available birefringent materials, as well as the majority of melamine-based materials. In addition, an examination of the crystal structures revealed that varying the anionic components can alter the orientation of the birefringent active groups, thereby influencing the optical anisotropy of the crystals. In this study, additional properties, such as thermal stability and UV-vis-NIR diffuse reflectance spectra, were also investigated. These results verified that adopting the phenyl substitution strategy to modify the existing birefringent active groups can effectively optimize the polarization anisotropy of the units, thereby constructing crystal materials with excellent performance.
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