四带近完美吸收双曲超构材料(英文)
PDF下载 (224)焦丽娜,刘 琪,吴万春,徐 华.四带近完美吸收双曲超构材料(英文)[J].宁波大学学报(理工版),2019,32(1):93-97.DOI:
JIAO Li-na,LIU Qi,WU Wan-chun,XU Hua.Four-band near-perfect absorption of hyperbolic metamaterials[J].Journal of Ningbo University(Natural Science & Engineering Edition),2019,32(1):93-97.DOI:
| Title: | Four-band near-perfect absorption of hyperbolic metamaterials |
| 作者: | 焦丽娜, 刘 琪, 吴万春, 徐 华 |
| Author(s): | JIAO Li-na, LIU Qi, WU Wan-chun, XU Hua |
| 关键词: | 近完美吸收; 窄带; 双曲超构材料; 波导; 折射率传感 |
| Keywords: | near-perfect absorption; narrow bands; hyperbolic metamaterials; waveguide; refractive index sensing |
| 分类号: | O43 |
| 文献标识码: | A |
| 摘要: | 当前的多带近完美吸收通常是利用多层叠堆或多特征尺寸组合阵列结构来实现, 这给实验制备带来了一定的难度. 本文从理论上提出了吸收率高达99%的四窄带近完美吸收, 它是通过将单特征尺寸的金属和介电材料阵列置于金属衬底之上而构成. 其四带近完美吸收的机理可通过求解双曲超构材料的色散关系, 结合波导理论来解释. 此外, 由于这种多带近完美吸收具有高品质因子的特点, 对外界环境的变化较为敏感, 因而本文也就其在传感器方面的潜在应用进行了讨论. |
| Abstract: | Multi-layer stacking or multi-sized array is generally employed to realize multi-band near-perfect absorption, from which the complexities arise in preparation. In this work, a four-band absorber with narrow bands and absorptance over 0.99 at infrared wavelengths is proposed based on theory, which presents a single- sized array with a metallic and a dielectric layer on a metal substrate. The origin of the four-band near- perfect absorption is explained by studying the dispersion relation of hyperbolic metamaterials in combination with the waveguide theory. It is found that the multi-band near-perfect absorption with high quality factors is sensitive to variation of surrounding environments, which projects potential applications as a biosensor. |
| 参考文献 /References: | [1] Veselago V G, Lebedev P N, Veselago V G. The electrodynamics of substances with simultaneously negative values of ? and μ[J]. Soviet Physics Uspekhi, 1968, 10(4):509-514. [2] Shelby R A, Smith D R, Schultz S. Experimental verification of a negative index of refraction[J]. Science, 2001, 292(5514):77-79. [3] Schurig D, Mock J J, Justice B J, et al. Metamaterial electromagnetic cloak at microwave frequencies[J]. Science, 2006, 314(5801):977-980. [4] Pendry J B. Negative refraction makes a perfect lens[J]. Physical Review Letters, 2000, 85(18):3966-3969. [5] Landy N I, Sajuyigbe S, Mock J J. Perfect metamaterial absorber[J/OL]. Physical Review Letters, 2008, 100(20): 207402 [2017-05-24]. https://journals.aps.org/prl/abstract/ 10.1103/PhysRevLett.100.207402. [6] Hao J, Wang J, Liu X, et al. High performance optical absorber based on a plasmonic metamaterial[J/OL]. Applied Physics Letters, 2010, 96(25):251104 [2017-09-17]. https://doi.org/10.1063/1.3442904. [7] Liu X, Starr T, Starr A F, et al. Infrared spatial and frequency selective metamaterial with near-unity absorbance[J/OL]. Physical Review Letters, 2010, 104(20):207403 [2017-05-24]. https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.104.207403. [8] Chen H T. Interference theory of metamaterial perfect absorbers[J]. Optics Express, 2012, 20(7):7165-7172. [9] Li W, Valentine J. Metamaterial perfect absorber based hot electron photodetection[J]. Nano Letters, 2012, 14(6):3510-3514. [10] 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. [11] Li Z Z, Luo C Y, Yao G, et al. Design of a concise and dual-band tunable metamaterial absorber[J]. Chinese Optics Letters, 2016, 14(10):83-88. [12] Bai Y, Zhao L, Ju D, et al. Wide-angle, polarization- independent and dual-band infrared perfect absorber based on L-shaped metamaterial[J]. Optics Express, 2015, 23(7):8670-8680. [13] Wang B X, Wang G Z, Sang T. Simple design of novel triple-band terahertz metamaterial absorber for sensing application[J/OL]. Journal of Physics D: Applied Physics, 2016, 49(16):165307 [2017-08-09]. http://iopscience.iop.org/article/10.1088/0022-3727/49/16/165307/pdf. [14] Yu D, Liu P G, Dong Y F, et al. A sextuple-band ultra-thin metamaterial absorber with perfect absorption[J]. Optics Communications, 2017, 396:28-35. [15] Hu F F, Yi H X, Zhou Z P. Band-pass plasmonic slot filter with band selection and spectrally splitting capabilities[J]. Optics Express, 2011, 19(6):4848-4855. [16] Petschulat J, Helgert C, Steinert M, et al. Plasmonic modes of extreme subwavelength nanocavities[J]. Optics Letters, 2010, 35(16):2693-2695. [17] Choy T C, Effective medium theory: Principles and applications[M]. Oxford: Oxford University Press, 1999:148. [18] Narimanov E E, poddubny A, Iorsh I, et al. Hyperbolic metamaterials[J]. Nature Photonics, 2013, 7(12):948-957. [19] Hu H, Ji D, Zeng X, et al. Rainbow trapping in hyperbolic metamaterial waveguide[J/OL]. Scientific Reports, 2013, 3(2):1249 [2017-03-21]. https://www.nature.com/articles/srep01249. [20] Lu W T, Huang Y J, Casse B D F, et al. Storing light in active optical waveguides with single-negative materials[J/OL]. Applied Physics Letters, 2010, 96(21):211112 [2017-07-13]. https://doi.org/10.1063/1.3431574. |
| 备注/Memo: | 收稿日期: 2018-09-03. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/基金项目: 浙江省自然科学基金(LY17A040004).第一作者: 焦丽娜(1991-), 女, 陕西咸阳人, 在读硕士研究生, 主要研究方向: 超构材料. E-mail: 939252946@qq.com*通信作者: 徐华(1979-), 女, 江苏无锡人, 副教授, 主要研究方向: 超构材料. E-mail: xuhua@nbu.edu.cn 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |