双折射
紫外线
各向异性
材料科学
极化(电化学)
光学
Crystal(编程语言)
光子晶体
光电子学
晶体光学
光学材料
带隙
晶体结构
结晶学
工作(物理)
紫外线
光学各向异性
线极化
面(心理学)
单晶
作者
Xin Wen,Dequan Kong,Jingyao Lu,Jindong Chen,Haohai Yu Haohai Yu,Huaijin Zhang,Zhanggui Hu,Jiyang Wang,Ning Ye,Guang Peng
标识
DOI:10.1002/anie.202526093
摘要
Short-wave ultraviolet (200-280 nm) crystals with large birefringence are important but scarce for polarization state modulation. The optical anisotropy in crystals is significantly influenced by the spatial arrangement of microscopic functional units. Herein, a design concept of constructing two-dimensional and linear arrangement structures is proposed to achieve large birefringence. By employing a symmetry-breaking strategy, commonly used triangular π-conjugated groups were extended to [NO2]-, [COOH]-, methylguanidine [C2N3H8]+, and guanylurea [C2N4H7O]+ groups with large anisotropic polarization. Driven by hydrogen bonding, two crystals, [C2N3H8]NO2 and [C2N4H7O]COOH, with ideal linear ordering were synthesized with the birefringence markedly enhanced to 0.331 and 0.413@546 nm, respectively. In particular, the [C2N4H7O]COOH crystal achieves a rare balance between a wide bandgap and superior birefringence in the short-wave ultraviolet region. Moreover, centimeter-sized single crystals were successfully obtained. This work not only provides new ideas for designing birefringent crystals but also offers promising candidate materials for optical modulation.
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