Chinese Journal of Quantum Electronics, Volume. 42, Issue 3, 369(2025)
Optimized design of multi⁃band terahertz electromagnetically induced transparency⁃like metamaterial sensor based on genetic algorithm
[1] Harris S E. Electromagnetically Induced Transparency[J]. Physics Today, 50, 36-42(1997).
[2] Zheng S Q, Ma M S, Lü Y et al. Dual-band electromagnetically induced transparent metamaterial with slow light effect and energy storage[J]. Journal of Physics D: Applied Physics, 55, 255103(2022).
[3] Chen M M, Xiao Z Y. Metal-graphene hybrid terahertz metamaterial based on dynamically switchable electromagnetically induced transparency effect and its sensing performance[J]. Diamond and Related Materials, 124, 108935(2022).
[4] Xiang X C, Ma H B, Wang L et al. Ultramicro-sensing of terahertz metamaterials implemented by using sample traps[J]. Acta Physica Sinica, 72, 302-309(2023).
[5] Zhang J, Mu N, Liu L H et al. Highly sensitive detection of malignant glioma cells using metamaterial-inspired THz biosensor based on electromagnetically induced transparency[J]. Biosensors and Bioelectronics, 185, 113241(2021).
[6] Papasimakis N, Fedotov V A, Zheludev N I et al. Metamaterial analog of electromagnetically induced transparency[J]. Physical Review Letters, 101, 253903(2008).
[7] Liu N, Langguth L, Weiss T et al. Plasmonic analogue of electromagnetically induced transparency at the Drude damping limit[J]. Nature Materials, 8, 758-762(2009).
[8] Zhang R Y, Zhu Q F, Zhang Y. Research progress of tunable terahertz metamaterial absorbers[J]. Chinese Journal of Quantum Electronics, 40, 301-318(2023).
[9] Kaina N, Lemoult F, Fink M et al. Negative refractive index and acoustic superlens from multiple scattering in single negative metamaterials[J]. Nature, 525, 77-81(2015).
[10] Shelby R A, Smith D R, Schultz S. Experimental verification of a negative index of refraction[J]. Science, 292, 77-79(2001).
[11] Chen J B, Wang Y, Jia B et al. Observation of the inverse Doppler effect in negative-index materials at optical frequencies[J]. Nature Photonics, 5, 239-242(2011).
[12] Zhai S L, Zhao X P, Liu S et al. Inverse Doppler effects in broadband acoustic metamaterials[J]. Scientific Reports, 6, 32388(2016).
[13] Pan W, Yan Y, Ma Y et al. A terahertz metamaterial based on electromagnetically induced transparency effect and its sensing performance[J]. Optics Communications, 431, 115-119(2019).
[14] Hu S, Liu D, Yang H et al. Staggered H-shaped metamaterial based on electromagnetically induced transparency effect and its refractive index sensing performance[J]. Optics Communications, 450, 202-207(2019).
[15] Sun R, Li W Y, Meng T H et al. Design and optimization of terahertz metamaterial sensor with high sensing performance[J]. Optics Communications, 494, 127051(2021).
[16] Lin T L, Huang Y, Zhong S et al. Field manipulation of electromagnetically induced transparency analogue in terahertz metamaterials for enhancing liquid sensing[J]. Optics and Lasers in Engineering, 157, 107127(2022).
[17] Han D, Ma Z Y, Wang J L et al. Inverse design of metamaterial absorber sensor based on particle swarm optimization[J]. Chinese Journal of Lasers, 49, 168-75(2022).
[18] Xie C, Li H, Cui C et al. Deep learning assisted inverse design of metamaterial microwave absorber[J]. Applied Physics Letters, 123, 181701(2023).
[19] Ge H Y, Li L, Jiang Y Y et al. Terahertz metamaterial absorber sensor based on double-opening metal ring[J]. Acta Physica Sinica, 71, 433-445(2022).
[20] Ma Y J, Yun W X. Research progress of genetic algorithm[J]. Application Research of Computers, 29, 1201-1206,1210(2012).
[21] Islam M S, Sultana J, Biabanifard M et al. Tunable localized surface plasmon graphene metasurface for multiband superabsorption and terahertz sensing[J]. Carbon, 158, 559-567(2020).
[22] Nguyen T H Y, Jeong H Y, Jun Y C et al. Geometry-independent excitation of dark modes using dipole moment transitions[J]. IEEE Transactions on Antennas and Propagation, 68, 6172-6182(2020).
[23] Prodan E, Radloff C, Halas N J et al. A hybridization model for the plasmon response of complex nanostructures[J]. Science, 302, 419-422(2003).
[24] Yan R Q, Wang T, Yue X Z et al. Highly sensitive plasmonic nanorod hyperbolic metamaterial biosensor[J]. Photonics Research, 10, 84-95(2022).
[25] Nickpay M R, Danaie M, Shahzadi A. Design of a graphene-based multi-band metamaterial perfect absorber in THz frequency region for refractive index sensing[J]. Physica E : Low-dimensional Systems and Nanostructures, 138, 115114(2022).
[26] Yao H Z, Mei H Y, Zhang W W et al. Theoretical and experimental research on terahertz metamaterial sensor with flexible substrate[J]. IEEE Photonics Journal, 14, 3700109(2022).
[27] Zhang C, Xue T, Zhang J et al. Terahertz toroidal metasurface biosensor for sensitive distinction of lung cancer cells[J]. Nanophotonics, 11, 101-109(2021).
[28] Meng K, Park S J, Burnett A D et al. Increasing the sensitivity of terahertz split ring resonator metamaterials for dielectric sensing by localized substrate etching[J]. Optics Express, 27, 23164-23172(2019).
[29] Wu X, Quan B, Pan X et al. Alkanethiol-functionalized terahertz metamaterial as label-free, highly-sensitive and specificbiosensor[J]. Biosensors and Bioelectronics, 42, 626-631(2013).
[30] Qu F F, Lin L, He Y et al. Spectral characterization and molecular dynamics simulation of pesticides based on terahertz time-domain spectra analyses and density functional theory (DFT) calculations[J]. Molecules, 23, 1607(2018).
[31] Sun Z S, Wang X, Wang J L et al. Sensing and slow light properties of dual-band terahertz metamaterials based on electromagnetically induced transparency-like[J]. Acta Physica Sinica, 71, 383-391(2022).
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Hongyi GE, Zhiyuan JIA, Yuying JIANG, Yuan ZHANG, Xuyang WU, Xiaodi JI, Zhenyu SUN, Guangyuan CUI. Optimized design of multi⁃band terahertz electromagnetically induced transparency⁃like metamaterial sensor based on genetic algorithm[J]. Chinese Journal of Quantum Electronics, 2025, 42(3): 369
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Received: Dec. 22, 2023
Accepted: --
Published Online: Jun. 11, 2025
The Author Email: Yuan ZHANG (zhangyuan@haut.edu.cn)