铌酸锂基宽带隙光子晶体的研究

Dingwei Chen, Jiangbo Wu, Xiangbin Zheng, Xing Yan, Chang-Kang Hu, Jian Li, Yongjun Huang, G. Wen
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摘要

光子晶体是将介电系数不同的材料按一定周期在空间上排列而成的结构。光子晶体具有多种用途,如可用于设计光子晶体光纤、腔光力学、光子晶体天线等。光子晶体的原料多为Si、SiN、GaAs等,铌酸锂因其光电效应丰富、物理化学性质稳定、透光范围广等优点,是一种新型的光子晶体材料。随着铌酸锂单晶薄膜加工技术的不断发展,现在已经有可能提供厚度为300-900nm的铌酸锂单晶薄膜,使铌酸锂用于光子晶体制造成为可能。因此,本文对铌酸锂光子晶体的宽带隙特性进行了研究和模拟。本文利用时域有限差分(FDTD)方法,通过控制晶格常数、空穴层半径和铌酸锂层厚度之比,对绝缘体二氧化硅上空穴型铌酸锂的光子带隙进行了模拟和研究。结果表明,气穴半径和铌酸锂光子晶体的厚度会影响光子晶体带隙的中心波长和带宽。当半径与晶格常数之比约为0.35时,通过调整铌酸锂的厚度,可以得到带隙为1387 nm ~ 1726 nm的铌酸锂光子晶体。基于此优化结果,可以获得高Q因子的铌酸锂光子晶体腔,以及铌酸锂光子晶体光力学腔。
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Research on Lithium Niobate-based Photonic Crystal with Wide Bandgap
Photonic crystal is a structure formed by arranging materials with different dielectric coefficients in space according to a certain period. Photonic crystal has a variety of applications, e.g., can be used to design photonic crystal fibers, cavity optomechanics, photonic crystal antennas, etc. Most of the raw materials for the photonic crystal are Si, SiN, GaAs, etc., and lithium niobate is a new type of photonic crystal material, because of its rich photoelectric effect, stable physical and chemical properties, and wide light transmission range. With the continuous development of lithium niobate single crystal thin film processing technology, it is now possible to provide single crystal thin film lithium niobate with a thickness of 300-900nm, making it possible to use lithium niobate for photonic crystal fabrications. Therefore, this paper investigates and simulates the wide bandgap characteristics of lithium niobate photonic crystals. By using finite difference time domain (FDTD) method, the simulations and investigations of the photonic bandgap in a hole-shaped lithium niobate on insulator silica is provided in this paper, through controlling the ratio among the lattice constant, the radius of the air hole layer and the thickness of lithium niobate layer. The results indicate that the radius of the air hole and the thickness of the lithium niobate photonic crystal will affect the center wavelength and bandwidth of the photonic crystal bandgap. And when the ratio of the radius to the lattice constant is about 0.35, by adjusting the thickness of the lithium niobate, a lithium niobate photonic crystal with a wide bandgap of 1387 nm-1726 nm is obtained. Based on this optimization results, the lithium niobate photonic crystal cavity with high Q factor, and also the lithium niobate photonic crystal optomechanical cavity can be achieved.
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