Acta Optica Sinica, Volume. 41, Issue 20, 2023002(2021)

Tunable Terahertz Broadband Bandpass Filter Based on Vanadium Dioxide

Yan Wang, Zhe Chen*, and Qi Cui
Author Affiliations
  • School of Information Science and Engineering, Yunnan University, Kunming, Yunnan 650500, China
  • show less
    References(31)

    [1] Tonouchi M. Cutting-edge terahertz technology[J]. Nature Photonics, 1, 97-105(2007).

    [2] Rappaport T S, Xing Y C, Kanhere O et al. Wireless communications and applications above 100 GHz: opportunities and challenges for 6G and beyond[J]. IEEE Access, 7, 78729-78757(2019).

    [3] Chen Z, Zhang B, Zhang Y et al. 220 GHz outdoor wireless communication system based on a Schottky-diode transceiver[J]. IEICE Electronics Express, 13, 20160282(2016).

    [4] Cummer S A, Popa B I. Wave fields measured inside a negative refractive index metamaterial[J]. Applied Physics Letters, 85, 4564-4566(2004).

    [5] Chen H T, Padilla W J, Cich M J et al. A metamaterial solid-state terahertz phase modulator[J]. Nature Photonics, 3, 148-151(2009).

    [6] Zhang Y X, Zhao Y C, Liang S X et al. Large phase modulation of THz wave via an enhanced resonant active HEMT metasurface[J]. Nanophotonics, 8, 153-170(2018).

    [7] Li D M, Yuan S, Yang R C et al. Dynamical optical-controlled multi-state THz metamaterial absorber[J]. Acta Optica Sinica, 40, 0816001(2020).

    [8] Cai Y J, Xu K D, Feng N X et al. Anisotropic infrared plasmonic broadband absorber based on graphene-black phosphorus multilayers[J]. Optics Express, 27, 3101-3112(2019).

    [9] Zhang M, Song Z Y. Terahertz bifunctional absorber based on a graphene-spacer-vanadium dioxide-spacer-metal configuration[J]. Optics Express, 28, 11780-11788(2020).

    [10] Liu Y, Zhong R B, Lian Z et al. Dynamically tunable band stop filter enabled by the metal-graphene metamaterials[J]. Scientific Reports, 8, 2828(2018).

    [11] Wang J L, Zhang B Z, Duan J P et al. Flexible dual-stopband terahertz metamaterial filter[J]. Acta Optica Sinica, 37, 1016001(2017).

    [12] Zhu D W, Zeng R M, Tang Z T et al. Design of multiband filter based on spoof surface plasmon polaritons[J]. Laser & Optoelectronics Progress, 57, 172401(2020).

    [13] Chiang Y J, Yang C S, Yang Y H et al. An ultrabroad terahertz bandpass filter based on multiple-resonance excitation of a composite metamaterial[J]. Applied Physics Letters, 99, 191909(2011).

    [14] Zhang X Q, Gu J Q, Cao W et al. Bilayer-fish-scale ultrabroad terahertz bandpass filter[J]. Optics Letters, 37, 906-908(2012).

    [15] Li H P, Fu W Y, Shen X P et al. Design and theoretical study of a polarization-insensitive multiband terahertz metamaterial bandpass filter[J]. Chinese Physics B, 26, 127801(2017).

    [16] Gao W, Wang J Y, Wu Q N. Design and investigation of a metamaterial terahertz broadband bandpass filter based on dual metallic rings[J]. Laser & Optoelectronics Progress, 58, 0516001(2021).

    [17] Zhang C H, Zhou G C, Wu J B et al. Active control of terahertz waves using vanadium-dioxide-embedded metamaterials[J]. Physical Review Applied, 11, 054016(2019).

    [18] Casu E A, Müller A A, Fernández-Bolaños M et al. Vanadium oxide bandstop tunable filter for Ka frequency bands based on a novel reconfigurable spiral shape defected ground plane CPW[J]. IEEE Access, 6, 12206-12212(2018).

    [19] Hu F R, Wang H, Zhang X W et al. Electrically triggered tunable terahertz band-pass filter based on VO2 hybrid metamaterial[J]. IEEE Journal of Selected Topics in Quantum Electronics, 25, 1-7(2019).

    [20] Zhao S, Hu F R, Xu X L et al. Electrically triggered dual-band tunable terahertz metamaterial band-pass filter based on Si3N4-VO2-Si3N4 sandwich[J]. Chinese Physics B, 28, 054203(2019).

    [21] Zhang X Q, Li Q, Cao W et al. Equivalent circuit analysis of terahertz metamaterial filters[J]. Chinese Optics Letters, 9, 110012-110016(2011).

    [22] Han J Z, Chen R S. Tunable broadband terahertz absorber based on a single-layer graphene metasurface[J]. Optics Express, 28, 30289-30298(2020).

    [23] Wang J L, Wang X, Han D. Terahertz wide stop-band metamaterials filter based on metal-dielectricmetal structure[J]. Journal of Infrared and Millimeter Waves, 38, 722-727(2019).

    [24] Wang D S, Che W Q, Chang Y M et al. A low-profile frequency selective surface with controllable triband characteristics[J]. IEEE Antennas and Wireless Propagation Letters, 12, 468-471(2013).

    [25] Sakai J, Zaghrioui M, Matsushima M et al. Impact of thermal expansion of substrates on phase transition temperature of VO2 films[J]. Journal of Applied Physics, 116, 123510(2014).

    [26] Sun D D, Chen Z, Wen Q Y et al. Low temperature growth of VO2 film and giant modulation to terahertz transmission. [C]∥Laser and Tera-Hertz Science and Technology 2012, November 1-2, 2012, Wuhan, China. Washington, D.C.: OSA, STh6B, 4(2012).

    [27] Liu H W, Lu J P, Wang X R. Metamaterials based on the phase transition of VO2[J]. Nanotechnology, 29, 024002(2018).

    [28] Driscoll T, Kim H T, Chae B G et al. Memory metamaterials[J]. Science, 325, 1518-1521(2009).

    [29] Leroy J, Crunteanu A, Bessaudou A et al. High-speed metal-insulator transition in vanadium dioxide films induced by an electrical pulsed voltage over nano-gap electrodes[J]. Applied Physics Letters, 100, 213507(2012).

    [30] Stefanovich G, Pergament A, Stefanovich D. Electrical switching and Mott transition in VO2[J]. Journal of Physics: Condensed Matter, 12, 8837-8845(2000).

    [31] Cavalleri A, Tóth C, Siders C W et al. Femtosecond structural dynamics in VO2 during an ultrafast solid-solid phase transition[J]. Physical Review Letters, 87, 237401(2001).

    Tools

    Get Citation

    Copy Citation Text

    Yan Wang, Zhe Chen, Qi Cui. Tunable Terahertz Broadband Bandpass Filter Based on Vanadium Dioxide[J]. Acta Optica Sinica, 2021, 41(20): 2023002

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Optical Devices

    Received: Feb. 22, 2021

    Accepted: May. 6, 2021

    Published Online: Sep. 30, 2021

    The Author Email: Chen Zhe (zhechen@ynu.edu.cn)

    DOI:10.3788/AOS202141.2023002

    Topics