光学技术, 2019, 45 (1): 58, 网络出版: 2019-04-16  

光子晶体液体浓度传感器

Photonic crystal liquid concentration sensor
作者单位
新疆大学 物理科学与技术学院, 新疆 乌鲁木齐 830046
摘要
为了有效地检测混合液体的浓度,运用平面波展开法与光子晶体禁带理论,研究了光子晶体禁带宽度和混合液体浓度的对应关系。以砷化镓(GaAs)为背景材料的三角格子空气孔二维光子晶体内分别填充不同浓度的水醋酸、水甲醇混合液体,讨论了混合液体浓度与介电常数对二维光子晶体禁带宽度的影响。模拟结果表明,在温度保持不变的情况下,浓度在0~0.60mol/kg之间变化时二维光子晶体TE模没出现光子晶体禁带而TM模出现的光子晶体禁带宽度随着混合液体浓度和介电常数的增大而逐渐变窄且向高频区域移动。这一结果为生物化学中混合液体浓度的检测方面提供很好的参考依据。
Abstract
In order to effectively detect concentration of mixed liquid , the corresponding relationship between band gap of photonic crystal and concentration of mixed liquid is studied by using plane wave expansion method and photonic crystal band gap theory. Two-dimensional photonic crystal with GaAs as the background material is filled with water-acetic acid and water-methanol mixed liquid with different concentration , influence of the concentration and dielectric constant on the band gap of two-dimensional photonic crystals are discussed . The simulation results show that when the temperature remains constant and the concentration changing from 0 to 0.60 mol/kg , didn’t appear any photonic crystal bandgap with TE mode and photonic crystal band gap with TM mode becomes gradually narrower and moves toward the higher frequency region when the concentration and the dielectric constant of the mixed liquid increase. This result provides a good reference for the detection of concentration of mixed liquid in biochemistry.
参考文献

[1] Zong Y X, Xia J B. Photonic band structure of one-dimensional metal/dielectric structures calculated by the plane-wave expansion method[J]. Science China(Physics, Mechanics and Astronomy), 2015, 58(7):1-6.

[2] 赵亚丽, 马富花, 江波, 等. ITO/Ag光子晶体薄膜的制备及性能[J]. 光学精密工程,2015, 23(6):1516-1522.

    Zhao Y L, Ma F H, Jiang B, et al. Preparation and properties of ITO/ Ag photonic crystal thin films[J]. Optics & Precision Engineering,2015,23(6):1516-1522.

[3] John S. Strong localization of photon in certain disordered dielectric super lattice[J]. Phys. Rev. Lett.,1987,58(23):2486-2489.

[4] Yablonovitch E. Inhibited spontaneous emission in solid-state physics and electronics[J]. Phys. Rev.Lett.,1987,58(20):2059-2062.

[5] 黄弼勤, 顾培夫. 一维光子晶体禁带的展宽[J]. 光学学报, 2003, 23 (12):1497-1501.

    Huang Biqin,Gu Peifu. Extension of one-dimensional photonic crystal’s band gap[J]. Acta Optica Sinica,2003,23(12):1497-1501.

[6] 黎磊, 刘桂强, 陈元浩,等. 光子晶体异质结耦合波导光开关[J]. 光学学报,2013,33(1):216-222.

    Li Lei,Liu Guiqiang,Chen Yuanhao,et al. An optical switch based on coupled heterostructure photonic-crystal waveguides[J]. Acta Optica Sinica,2013,33(1):216-222.

[7] Pezeshki H, Darvish G. Design of photonic crystal microcavity based optical switches using Fano resonance effect[J]. Optik - International Journal for Light and Electron Optics,2015,126(23):4202-4205.

[8] Ouahab I, Naoum R. A novel all optical 4×2 encoder switch based on photonic crystal ring resonators[J]. Optik-International Journal for Light and Electron Optics,2016,127(19):7835-7841.

[9] Pezeshki H, Darvish G . Design of photonic crystal microcavity based optical switches using Fano resonance effect[J]. Optik-International Journal for Light and Electron Optics,2015,126(23):4202-4205.

[10] 蔡元贞. 不同结构光子晶体带隙特性研究[J].激光杂志,2012,33(4):15-16.

    Cai Yuanzhen. Different structure photonic crystal properties research[J].Laser Journal,2012,33(4):15-16.

[11] 陈娟, 葛文萍, 王晓薇, 等. 八边形低色散高非线性光子晶体光纤的设计[J]. 激光技术,2012,36(4):480-484.

    Chen Juan,Ge Wengping,Wang Xiaowei,et al. Design of a novel octagonal photonic crystal fiber with flat dispersion and high nonline-arity[J]. Laser Technology,2012,36(4):480-484.

[12] Song N, Cai W, Song J, et al. Structure optimization of small-diameter polarization-maintaining photonic crystal fiber for mini coil of space borne miniature fiber-optic gyroscope[J]. Applied Optics,2015,54(33):9831.

[13] Chen Minghui, Wu T,Wang C,et al. All-fiber ring-cavity based frequency swept laser source for frequency domain OCT[J].Chinese Optics Letters,2010,8(2):202-205.

[14] Asher S A, Sharma A C, And A V G, et al. Photonic crystal aqueous metal cation sensing materials[J]. Analytical Chemistry,2003,75(7):1676-1683.

[15] 李大海, 孙晓红, 刘国彬, 等. 一维光子晶体传感器在液体测量方面的应用研究[J].激光与红外,2011,41(8):899-903.

    Li Dahai,Sun Xiaohong,Liu Guobin,et al. One dimensional photonic crystal sensor in the application of liquid measurement[J]. Laser and Infrared,2011,41(8):899-903.

[16] Liu Y, Salemink H W. Photonic crystal-based all-optical on-chip sensor[J]. Optics Express,2012,20(18):19912-19920.

[17] 帕孜来提, 阿不都热苏力, 阿卜杜外力, 等.基于光子晶体的物质的量浓度测量研究同[J].激光杂志,2014,35(2):28-29.

    Pazilaiti ,Abuduresuli,Abuduwaili,et al. Applied research of molarity detection technology in photonic crystals[J]. Laser Journal,2014,35(2):28-29.

[18] Sathyadevaki R, Raja A S, Sundar D S. Photonic crystal-based optical filter: a brief investigation[J]. Photonic Network Communications,2016,33(1):1-8.

[19] Xie L, Xia B, Liu J, et al. An improved fast plane wave expansion method for topology optimization of phononic crystals[J]. International Journal of Mechanical Sciences,2016,1206(2) : 120-127.

[20] Gopinath P, Sukanta T. A novel method for measurement of concentration using two dimensional Photonic crystal structures[J].Optics Communications,2012,285(10):2765-2768.

[21]

    Huang Lili,Qiao Zhijun,et al. Soliton-cnoidal interactional wave solutions for the reduced Maxwell-Bloch equations[J].Chinese Physics B,2018,27(2):224-231.

[22] Pendry J B,Mackinnon A.Calculation of photon dispersion relations[J]. Physical Review Letters,1992,69(19):2772-2775.

[23] Plihal M, Shambrook A, Maradudin A A, et al. Two-dimensional photonic band structures[J].Optics Communications,1991,80(3-4):199-204.

[24] Mohsen-Nia M,Amiri H.Measurement and modelling of static dielectric constants of aqueous solutions of methanol, ethanol and acetic acid at T=293.15K and 91.3kPa[J].Journal of Chemical Thermodynamics,2013,57(2):67-70.

阿卜杜外力江·伊米提, 阿不都热苏力·阿不都热西提. 光子晶体液体浓度传感器[J]. 光学技术, 2019, 45(1): 58. A.YIMITI, A.ABUDUREXITI. Photonic crystal liquid concentration sensor[J]. Optical Technique, 2019, 45(1): 58.

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