• Laser & Optoelectronics Progress
  • Vol. 58, Issue 5, 0516001 (2021)
Wan Gao1, Jianyang Wang1, and Qiannan Wu1、2、3、4、*
Author Affiliations
  • 1Department of Physics, College of Science, North University of China, Taiyuan , Shanxi 030051, China
  • 2Nantong Institute of Intelligent Opto-Mechatronics of North University of China, Nantong , Jiangsu 226000, China
  • 3Center for Microsystem Integration , North University of China, Taiyuan , Shanxi 030051, China
  • 4Academy for Advanced Interdisciplinary Research, North University of China, Taiyuan , Shanxi 030051, China
  • show less
    DOI: 10.3788/LOP202158.0516001 Cite this Article Set citation alerts
    Wan Gao, Jianyang Wang, Qiannan Wu. Design and Investigation of a Metamaterial Terahertz Broadband Bandpass Filter Based on Dual Metallic Rings[J]. Laser & Optoelectronics Progress, 2021, 58(5): 0516001 Copy Citation Text show less
    References

    [1] Liu S G. Recent development of terahertz science and technology. China Basic Science, 8, 7-12(2006).

    [2] Yao J Q, Lu Y, Zhang B G et al. New research progress of THz radiation‍. Journal of Optoelectronics·Laser, 16, 503-510(2005).

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

    [4] Dong N Y. Analysis on the key technology of 6G communication system. Scientific and Technological Innovation, 5, 54-55(2020).

    [5] Strinati E C, Barbarossa S, Gonzalez-Jimenez J L et al. 6G: the next frontier. IEEE Vehicular Technology Magazine, 14, 42-50(2019).

    [6] Zhang Z Q, Xiao Y, Ma Z et al. 6G wireless networks: vision, requirements, architecture, and key technologies. IEEE Vehicular Technology Magazine, 14, 28-41(2019).

    [7] Yi Z, Liang C P, Chen X F et al. Dual-band plasmonic perfect absorber based on graphene metamaterials for refractive index sensing application. Micromachines, 10, E443(2019).

    [8] Chen X Y, Tian Z, Lu Y C et al. Electrically tunable perfect terahertz absorber based on a graphene salisbury screen hybrid metasurface. Advanced Optical Materials, 8, 1900660(2020).

    [9] Zou H J, Cheng Y Z. A thermally tunable terahertz three-dimensional perfect metamaterial absorber for temperature sensing application. Modern Physics Letters B, 34, 2050207(2020).

    [10] Ullah S, Ruan C J, Haq T U et al. High performance THz patch antenna using photonic band gap and defected ground structure. Journal of Electromagnetic Waves and Applications, 33, 1943-1954(2019).

    [11] Wang J Y, Wu Q N. Metamaterial terahertz broadband reflector with double-layer grid. Chinese Journal of Lasers, 47, 0614002(2020).

    [12] Ren L M. Application of terahertz technology in railway security checks. Electronic Test, 118-120(2014).

    [13] Tiodor N, Aladdin A, Michael I et al. Sub-terahertz low power UWB communication link for WPAN. Network & Complex Systems, 2, 45-49(2012).

    [14] Chan W L, Charan K, Takhar D et al. A single-pixel terahertz imaging system based on compressed sensing. Applied Physics Letters, 93, 121105(2008).

    [15] Ferguson B, Zhang X C, Zhang X C. Materials for terahertz science and technology. Nature Materials, 1, 26-33(2002).

    [16] Williams G P. Filling the THz gap-high power sources and applications. Reports on Progress in Physics, 69, 301-326(2006).

    [17] Yan H T, Deng C, Guo L T et al. Design of terahertz rapid standoff imaging system. Journal of Applied Optics, 37, 183-186(2016).

    [18] Yoshida H, Ogawa Y, Kawai Y et al. Terahertz sensing method for protein detection using a thin metallic mesh. Applied Physics Letters, 91, 253901(2007).

    [19] Li J S. Terahertz wave narrow bandpass filter based on photonic crystal. Optics Communications, 283, 2647-2650(2010).

    [20] Lan F, Yang Z Q, Qi L M et al. Compact waveguide bandpass filter employing two-dimensional metallic photonic crystals for millimeterto terahertz frequencies. Chinese Optics Letters, 12, 040401(2014).

    [21] Sun D D, Qi L M, Liu Z Y. Terahertz broadband filter and electromagnetically induced transparency structure with complementary metasurface. Results in Physics, 16, 102887(2020).

    [22] Kumar D, Kumar R, Chowdhury D R. Complementary metamaterials based broadband bandpass terahertz filter. //2019 Workshop on Recent Advances in Photonics (WRAP), December13-14, 2019, Guwahati, India, 1-3(2019).

    [23] Ma H Y, Li J S. Terahertz bandpass filter based on Koch curve fractal structure. Spectroscopy and Spectral Analysis, 40, 733-737(2020).

    [24] 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. Chinese Physics B, 28, 115-120(2019).

    [25] Jiang M Z, Hu F R, Qian Y X et al. Tunable terahertz band-pass filter based on MEMS reconfigurable metamaterials. Journal of Physics D, 53, 065107(2020).

    Wan Gao, Jianyang Wang, Qiannan Wu. Design and Investigation of a Metamaterial Terahertz Broadband Bandpass Filter Based on Dual Metallic Rings[J]. Laser & Optoelectronics Progress, 2021, 58(5): 0516001
    Download Citation