光学学报, 2020, 40 (14): 1424001, 网络出版: 2020-07-23   

工字形椭圆纳米结构的吸收及其折射率敏感特性研究 下载: 1084次

Absorption and Refractive Index Sensitivity of the I-Shaped Elliptical Nanostructures
作者单位
1 中北大学仪器与电子学院, 山西, 太原 030051
2 中北大学电子测试技术国防科技重点实验室, 山西, 太原 030051
3 北京宇航系统工程研究院, 北京 100000
引用该论文

旷依琴, 李刚, 闫竹青, 张彦军, 张志东, 郝现伟. 工字形椭圆纳米结构的吸收及其折射率敏感特性研究[J]. 光学学报, 2020, 40(14): 1424001.

Yiqin Kuang, Gang Li, Zhuqing Yan, Yanjun Zhang, Zhidong Zhang, Xianwei Hao. Absorption and Refractive Index Sensitivity of the I-Shaped Elliptical Nanostructures[J]. Acta Optica Sinica, 2020, 40(14): 1424001.

参考文献

[1] Meshram M R, Agrawal N K, Sinha B, et al. Characterization of M-type barium hexagonal ferrite-based wide band microwave absorber[J]. Journal of Magnetism and Magnetic Materials, 2004, 271(2/3): 207-214.

[2] Ma Y, Chen Q, Grant J, et al. A terahertz polarization insensitive dual band metamaterial absorber[J]. Optics Letters, 2011, 36(6): 945-947.

[3] 崔子健, 王玥, 朱冬颖, 等. 太赫兹超材料吸收器的完美吸收条件与吸收特性[J]. 中国激光, 2019, 46(6): 0614023.

    Cui Z J, Wang Y, Zhu D Y, et al. Perfect absorption conditions and absorption characteristics of terahertz metamaterial absorber[J]. Chinese Journal of Lasers, 2019, 46(6): 0614023.

[4] Zhao L, Liu H, He Z H, et al. Theoretical design of twelve-band infrared metamaterial perfect absorber by combining the dipole, quadrupole, and octopole plasmon resonance modes of four different ring-strip resonators[J]. Optics Express, 2018, 26(10): 12838-12851.

[5] Li M L, Muneer B, Yi Z X, et al. A broadband compatible multispectral metamaterial absorber for visible, near-infrared, and microwave bands[J]. Advanced Optical Materials, 2018, 6(9): 1701238.

[6] Boström T. Wäckelg ård E, Westin G. Solution-chemical derived nickel-alumina coatings for thermal solar absorbers[J]. Solar Energy, 2003, 74(6): 497-503.

[7] Stranks S D, Eperon G E, Grancini G, et al. Electron-hole diffusion lengths exceeding 1 micrometer in an organometal trihalide perovskite absorber[J]. Science, 2013, 342(6156): 341-344.

[8] Yin W J, Shi T T, Yan Y F. Unusual defect physics in CH3NH3PbI3 perovskite solar cell absorber[J]. Applied Physics Letters, 2014, 104(6): 063903.

[9] Liu N, Mesch M, Weiss T, et al. Infrared perfect absorber and its application as plasmonic sensor[J]. Nano Letters, 2010, 10(7): 2342-2348.

[10] Wu D, Liu Y M, Li R F, et al. Infrared perfect ultra-narrow band absorber as plasmonic sensor[J]. Nanoscale Research Letters, 2016, 11: 483.

[11] Alves F, Grbovic D, Kearney B, et al. Microelectromechanical systems bimaterial terahertz sensor with integrated metamaterial absorber[J]. Optics Letters, 2012, 37(11): 1886-1888.

[12] Ullah H, Khan A D, Noman M, et al. Novel multi-broadband plasmonic absorber based on a metal-dielectric-metal square ring array[J]. Plasmonics, 2018, 13(2): 591-597.

[13] Chalabi H, Schoen D, Brongersma M L. Hot-electron photodetection with a plasmonic nanostripe antenna[J]. Nano Letters, 2014, 14(3): 1374-1380.

[14] Salisbury WW. Absorbent body for electromagnetic waves: US 2599944[P].1952.

[15] Schurig D, Mock J J, Justice B J, et al. Metamaterial electromagnetic cloak at microwave frequencies[J]. Science, 2006, 314(5801): 977-980.

[16] Cheng F, Yang X D, Gao J. Enhancing intensity and refractive index sensing capability with infrared plasmonic perfect absorbers[J]. Optics Letters, 2014, 39(11): 3185-3188.

[17] 王会丽, 秦俊, 康同同, 等. 基于Au/Ce∶YIG/TiN结构的磁光表面等离激元共振及折射率传感器研究[J]. 激光与光电子学进展, 2019, 56(20): 202403.

    Wang H L, Qin J, Kang T T, et al. Magneto-optical surface plasmon resonance and refractive index sensor based on Au/Ce∶YIG/TiN structure[J]. Laser & Optoelectronics Progress, 2019, 56(20): 202403.

[18] 徐娅, 边捷, 张伟华. 局域表面等离激元纳米光学传感器的原理与进展[J]. 激光与光电子学进展, 2019, 56(20): 202407.

    Xu Y, Bian J, Zhang W H. Principles and processes of nanometric localized-surface-plasmonic optical sensors[J]. Laser & Optoelectronics Progress, 2019, 56(20): 202407.

[19] Barnes W L, Dereux A, Ebbesen T W. Surface plasmon subwavelength optics[J]. Nature, 2003, 424(6950): 824-830.

[20] Zayats A V, Smolyaninov I I, Maradudin A A. Nano-optics of surface plasmon polaritons[J]. Physics Reports, 2005, 408(3/4): 131-314.

[21] Ly-Gagnon D S, Balram K C, White J S, et al. Routing and photodetection in subwavelength plasmonic slot waveguides[J]. Nanophotonics, 2012, 1(1): 9-16.

[22] Bagheri S, Strohfeldt N, Sterl F, et al. Large-area low-cost plasmonic perfect absorber chemical sensor fabricated by laser interference lithography[J]. ACS Sensors, 2016, 1(9): 1148-1154.

[23] Yoo M, Kim H K, Lim S. Electromagnetic-based ethanol chemical sensor using metamaterial absorber[J]. Sensors and Actuators B: Chemical, 2016, 222: 173-180.

[24] Kats M A, Sharma D, Lin J, et al. Ultra-thin perfect absorber employing a tunable phase change material[J]. Applied Physics Letters, 2012, 101(22): 221101.

[25] Wang B X, Zhai X, Wang G Z, et al. A novel dual-band terahertz metamaterial absorber for a sensor application[J]. Journal of Applied Physics, 2015, 117(1): 014504.

[26] Xiao D, Tao K Y, Wang Q. Ultrabroadband mid-infrared light absorption based on a multi-cavity plasmonic metamaterial array[J]. Plasmonics, 2016, 11(2): 389-394.

[27] Zhu L, Zhao X, Miao F J, et al. Dual-band polarization convertor based on electromagnetically induced transparency (EIT) effect in all-dielectric metamaterial[J]. Optics Express, 2019, 27(9): 12163-12170.

[28] Cong L Q, Tan S Y, Yahiaoui R, et al. Experimental demonstration of ultrasensitive sensing with terahertz metamaterial absorbers: a comparison with the metasurfaces[J]. Applied Physics Letters, 2015, 106(3): 031107.

[29] Sreekanth K V. ElKabbash M, Alapan Y, et al. A multiband perfect absorber based on hyperbolic metamaterials[J]. Scientific Reports, 2016, 6: 26272.

[30] Li R F, Wu D, Liu Y M, et al. Infrared plasmonic refractive index sensor with ultra-high figure of merit based on the optimized all-metal grating[J]. Nanoscale Research Letters, 2017, 12: 1.

[31] Huang H L, Xia H, Guo Z B, et al. Dynamically tunable dendritic graphene-based absorber with thermal stability at infrared regions[J]. Applied Physics A, 2018, 124(6): 429.

[32] Xu H X, Hu L Z, Lu Y X, et al. Dual-band metamaterial absorbers in the visible and near-infrared regions[J]. The Journal of Physical Chemistry C, 2019, 123(15): 10028-10033.

[33] Wang S, Sun X H, Ding M J, et al. The investigation of an LSPR refractive index sensor based on periodic gold nanorings array[J]. Journal of Physics D: Applied Physics, 2018, 51(4): 045101.

[34] Xu J, Zhao Z Y, Yu H C, et al. Design of triple-band metamaterial absorbers with refractive index sensitivity at infrared frequencies[J]. Optics Express, 2016, 24(22): 25742-25751.

[35] Lu X Y, Zhang L X, Zhang T Y. Nanoslit-microcavity-based narrow band absorber for sensing applications[J]. Optics Express, 2015, 23(16): 20715-20720.

[36] Rifat A, Rahmani M, Xu L, et al. Hybrid metasurface based tunable near-perfect absorber and plasmonic sensor[J]. Materials, 2018, 11(7): 1091.

旷依琴, 李刚, 闫竹青, 张彦军, 张志东, 郝现伟. 工字形椭圆纳米结构的吸收及其折射率敏感特性研究[J]. 光学学报, 2020, 40(14): 1424001. Yiqin Kuang, Gang Li, Zhuqing Yan, Yanjun Zhang, Zhidong Zhang, Xianwei Hao. Absorption and Refractive Index Sensitivity of the I-Shaped Elliptical Nanostructures[J]. Acta Optica Sinica, 2020, 40(14): 1424001.

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