双折射
材料科学
六方氮化硼
紫外线
光电子学
六方晶系
光学
硼
纳米技术
石墨烯
化学
结晶学
物理
有机化学
作者
Hao Xu,Baofu Ding,Youan Xu,Ziyang Huang,Dahai Wei,Shaohua Chen,Tianshu Lan,Yikun Pan,Hui‐Ming Cheng,Bilu Liu
标识
DOI:10.1038/s41565-022-01186-1
摘要
Birefringence is a fundamental optical property that can induce phase retardation of polarized light. Tuning the birefringence of liquid crystals is a core technology for light manipulation in current applications in the visible and infrared spectral regions. Due to the strong absorption or instability of conventional liquid crystals in deep-ultraviolet light, tunable birefringence remains elusive in this region, notwithstanding its significance in diverse applications. Here we show a stable and birefringence-tunable deep-ultraviolet modulator based on two-dimensional hexagonal boron nitride. It has an extremely large optical anisotropy factor of 6.5 × 10−12 C2 J−1 m−1 that gives rise to a specific magneto-optical Cotton–Mouton coefficient of 8.0 × 106 T−2 m−1, which is about five orders of magnitude higher than other potential deep-ultraviolet-transparent media. The large coefficient, high stability (retention rate of 99.7% after 270 cycles) and wide bandgap of boron nitride collectively enable the fabrication of stable deep-ultraviolet modulators with magnetically tunable birefringence.
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