半导体
吸收(声学)
相(物质)
材料科学
光子学
相变
复合数
Crystal(编程语言)
光电子学
电场
光子晶体
光学
凝聚态物理
物理
复合材料
量子力学
计算机科学
程序设计语言
作者
Han Chen,Qing Xie,Wenjuan Han
标识
DOI:10.1088/1361-6455/ace66f
摘要
Abstract In this paper, a dynamically modulated Near-IR asymmetric composite photonic crystal (PC) is proposed, which constitutes by a one-dimensional PC (1-D PC) with vanadium dioxide (VO 2 ) phase transition defect layers. By combining asymmetric composite PC with VO 2 phase material, which will undergo the semiconductor-metal transition (SMT) under thermal stimulation, to realize the controllable unidirectional multi-channel absorber under temperature control. Based on a relatively simple 1-D stacked thin film model, the model is investigated and optimized in terms of the structure, number of periods, and the thickness of defect layers, with the result of 20 nm for VO 2 defect layers and seven circles for the post-defect period. By using the pre-defect period number of 3, an average absorbance of 0.19 can be achieved when VO 2 is in the semiconductor phase at low temperature. With the rise in temperature, VO 2 transitions to metal phase, where the structure absorption reaches 0.99. In addition, changing the per-defect period number to 5, the average absorption at semiconductor and metal VO 2 is 0.73 and 0.10, respectively. The differential absorption around the SMT enables the tunability of single photonic devices. During the simulation, the effects of electric field and incidence angle on the structure are also analyzed. Meanwhile, the Bruggeman approximation effective medium theory is introduced in this work, and the changes of the absorption during the phase transition from semiconductor to metal in the VO 2 defect layers are also given. These characteristics are applicable to controllable multispectral absorbers, infrared detectors, limiter, and optical switchers.
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