材料科学
光学
反射(计算机编程)
光子晶体
光电子学
太赫兹辐射
吸收(声学)
全内反射
折射率
衰减系数
Crystal(编程语言)
光学材料
反射系数
反射率
非线性光学
菲涅耳方程
耦合模理论
导模共振
吸收光谱法
光散射
电子束光刻
散射
太赫兹光谱与技术
光子学
相位匹配
晶体光学
集成光学
光子晶体光纤
可见光谱
出处
期刊:Optics Express
[Optica Publishing Group]
日期:2026-05-27
卷期号:34 (13): 23100-23100
摘要
We propose a thermally and electrically tunable terahertz (THz) device based on a graphene–VO 2 hybrid one-dimensional photonic crystal (1DPC) of the form G(AB) N VO 2 (BA) N . Owing to the insulator–metal phase transition of VO 2 , the structure behaves as a high-reflectivity mirror at the insulating phase ( T = 300 K ), while at the metallic phase ( T = 350 K ) it transforms into a reconfigurable multichannel absorber. The number of absorption channels is deterministically governed by the periodicity: for N ≤ 4, each period introduces one resonance; at N = 5, five resonances emerge with four showing absorption above 0.88; for 5 ≤ N ≤ 10, the highest-frequency mode gradually vanishes, yielding N − 1 channels; and for 11 ≤ N ≤ 13, suppression of the lowest-frequency mode results in N − 2 channels, reaching up to eleven modes at N = 13. Removing graphene collapses the response to a single absorption peak, confirming its essential role in multichannel formation through plasmonic loss. The device also exhibits robust angular and polarization stability, preserving high absorption for all channels up to , while TE-polarized modes maintain near-unity absorption for higher-order peaks. In addition to thermal and geometric tunability, electrical gating of graphene enables continuous frequency shifts of 1.6–9.6% per eV and controllable redistribution of modal absorption strength. Furthermore, due to the asymmetric placement of graphene, the structure displays pronounced unidirectional nonreciprocity: forward incidence supports multichannel absorption, whereas backward incidence yields only a single resonance for N = 4–7 and no resonances for other N , demonstrating unidirectional THz absorption without magnetic bias or temporal modulation. By synergistically combining VO 2 phase switching, graphene electro-optic control, and periodicity engineering, the proposed platform enables multifunctional THz operation, ranging from single-mode and multimode absorption to direction-dependent nonreciprocal absorption, within a compact and reconfigurable 1DPC architecture.
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