• Journal of Terahertz Science and Electronic Information Technology
  • Vol. 22, Issue 6, 647 (2024)
LIU Siqi1,2,3,*, LIN Changxing1,2, LIU Juan1,2, and DENG Xianjin1,2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.11805/tkyda2024110 Cite this Article
    LIU Siqi, LIN Changxing, LIU Juan, DENG Xianjin. A review on the characteristics of terahertz near field communication channels[J]. Journal of Terahertz Science and Electronic Information Technology , 2024, 22(6): 647 Copy Citation Text show less
    References

    [1] CISCO U. Cisco annual internet report(2018-2023) white paper[R/OL]. (2020-03-09) https://www.cisco.com/c/en/us/ solutions/ collateral/ executive-perspectives/annual-internet-report/white-paper-c11-741490.html.

    [2] ERICSSON S. Ericsson mobility report:5G to top one billion subscriptions in 2022 and 4.4 billion in 2027[EB/OL]. (2022-06- 21). https://www. ericsson. com/en/press-releases/2022/6/ericsson-mobility-report-5g-to-top-one-billion-subscriptions-in- 2022-and-4.4-billion-in-2027.

    [5] YU Jianjun. Broadband terahertz communication technologies[M]. Berlin:Springer, 2021.

    [6] SILES G A,RIERA J M, GARCIA-DEL-PINO P. Atmospheric attenuation in wireless communication systems at millimeter and THz frequencies[wireless corner] [J]. IEEE Antennas and Propagation Magazine, 2015, 57( 1): 48-61. doi: 10. 1109/MAP. 2015. 2401796.

    [7] STRECKER K, EKIN S, O'HARA J F. Compensating atmospheric channel dispersion for terahertz wireless communication[J]. Scientific Reports, 2020, 10( 1):5816. doi:10. 1038/s41598-020-62692-7.

    [9] YI Haofan,GUAN Ke,MATHIOPOULOSPT,et al. Full-wave simulation and scattering modeling for terahertz communications[J]. IEEE Journal of Selected Topics in Signal Processing, 2023, 17(4):713-728.) doi:10. 1109/JSTSP.2023.3285099.

    [10] SHEIKH F, KAISER T. Rough surface analysis for short-range ultra-broadband THz communications[C]// 2018 IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting. Boston,MA,USA:IEEE, 2018: 1543-1544. doi:10. 1109/APUSNCURSINRSM.2018.8609336.

    [11] TALEB F,HERNANDEZ-CARDOSO G G,CASTRO-CAMUS E,et al. Transmission,reflection, and scattering characterisation of building materials for indoor THz communications[J]. IEEE Transactions on Terahertz Science and Technology, 2023, 13(5): 421-430. doi:10. 1109/TTHZ.2023.3281773.

    [12] JACOB M, PRIEBE S, DICKHOFF R, et al. Diffraction in mm and sub-mm wave indoor propagation channels[J]. IEEE Transactions on Microwave Theory and Techniques, 2012,60(3):833-844. doi:10. 1109/TMTT.2011.2178859.

    [13] WANG Yiqin, LI Yuanbo, CHEN Yi, et al. 0.3 THz channel measurement and analysis in an l-shaped indoor hallway[C]// ICC 2022-IEEE International Conference on Communications. Seoul, Republic of Korea: IEEE, 2022: 2870-2875. doi: 10. 1109/ ICC45855.2022.9838312.

    [14] SERGHIOU D,KHALILY M,JOHNY S,et al. Ultra-Wideband terahertz channel propagation measurements from 500 to 750 GHz[C]// 2020 International Conference on UK-China Emerging Technologies(UCET). Glasgow, UK: IEEE, 2020: 1-4. doi: 10. 1109/ UCET51115.2020.9205476.

    [15] KHALID N, ABBASI N A, AKAN O B. Statistical characterization and analysis of low-THz communication Channel for 5G Internet of Things[J]. Nano Communication Networks, 2019(22): 100258. doi:10. 1016/j.nancom.2019. 100258.

    [16] JIANG Tao,ZHANG Jianhua,TANG Pan,et al. A study of uplink and downlink channel spatial characteristics in an urban micro scenario at 28 GHz[J]. Frontiers of Information Technology & Electronic Engineering, 2021, 22(4): 488-502. doi: 10. 1631/ FITEE.2000443.

    [17] GUAN Ke,PENG Bile,HE Danping,et al. Measurement,simulation, and characterization of train-to-infrastructure inside-station channel at the terahertz band[J]. IEEE Transactions on Terahertz Science and Technology, 2019, 9(3): 291-306. doi: 10. 1109/ TTHZ.2019.2909975.

    [18] JUNG B K,DREYER N,ECKHARD J M,et al. Simulation and automatic planning of 300 GHz backhaul links[C]// 2019 the 44th International Conference on Infrared, Millimeter, and Terahertz Waves(IRMMW-THz). Paris, France: IEEE, 2019: 1-3. doi: 10. 1109/IRMMW-THz.2019.8873734.

    [19] FU Jinbang,JUYAL P,ZAJI? A. THz Channel characterization of chip-to-chip communication in desktop size metal enclosure[J]. IEEE Transactions on Antennas and Propagation, 2019,67( 12):7550-7560. doi:10. 1109/TAP.2019.2934908.

    [20] SELVAN K T,JANASWAMY R. Fraunhofer and Fresnel distances: unified derivation for aperture antennas [J]. IEEE Antennas and Propagation Magazine, 2017,59(4): 12-15. doi:10. 1109/MAP.2017.2706648.

    [21] CUI Mingyao,WU Zidong,LU Yu,et al. Near-field MIMO communications for 6G:fundamentals, challenges,potentials,and future directions[J]. IEEE Communications Magazine, 2023,61( 1):40-46. doi:10. 1109/MCOM.004.2200136.

    [22] POMETCU L, D'ERRICO R. Channel model characteristics in D-band for NLOS indoor scenarios[C]// 2019 the 13th European Conference on Antennas and Propagation(EuCAP). Krakow,Poland:IEEE, 2019: 1-4.

    [23] PRIEBE S, KURNER T. Stochastic modeling of THz indoor radio channels[J]. IEEE Transactions on Wireless Communications, 2013, 12(9):4445-4455. doi:10. 1109/TWC.2013.072313. 121581.

    [24] GUAN Ke, YI Haofan, HE Danping, et al. Towards 6G: paradigm of realistic terahertz channel modeling[J]. China Communications, 2021, 18(5): 1-18. doi:10.23919/JCC.2021.05.001.

    [25] WU Yongzhi, HAN Chong, CHEN Zhi. DFT-spread orthogonal time frequency space system with superimposed pilots for terahertz integrated sensing and communication[J]. IEEE Transactions on Wireless Communications, 2023, 22( 11): 7361-7376. doi:10. 1109/TWC.2023.3250267.

    [26] CHEN Ang, CHEN Li, CHEN Yunfei, et al. Cramér-rao bounds of near-field positioning based on electromagnetic propagation model[J]. IEEE Transactions on Vehicular Technology, 2023,72( 11): 13808-13825. doi:10. 1109/TVT.2023.3284658.

    [27] PAN Yijin, PAN Cunhua, JIN Shi, et al. RIS-aided near-field localization and channel estimation for the terahertz system[J]. IEEE Journal of Selected Topics in Signal Processing, 2023, 17(4):878-892. doi:10. 1109/JSTSP.2023.3285431.

    [28] ETSI. Study on channel model for frequencies from 0.5 to 100 GHz(3GPP TR 38.901 version 14.0.0 Release 14)[R/OL]. [2024- 05]. https://www.etsi.org/deliver/etsi_tr/ 138900_ 138999/ 138901/ 14.00.00_60/tr_ 138901v 140000p.pdf.

    [29] LI Xinrui, LU Haiquan, ZENG Yong, et al. Modular extremely large-scale array communication: near-field modelling and performance analysis[J]. China Communications, 2023,20(4): 132-152. doi:10.23919/JCC.fa.2022-0715.202304.

    [30] WANG Ying,SAFAVI-NAEINI S,CHAUDHURI S K. A hybrid technique based on combining ray tracing and FDTD methods for site-specific modeling of indoor radio wave propagation[J]. IEEE Transactions on Antennas and Propagation, 2000,48(5): 743-754. doi:10. 1109/8.855493.

    [31] ZHANG Yan, ZHAO Lei, HE Zunwen. A 3D hybrid dynamic channel model for indoor THz communications[J]. China Communications, 2021, 18(5):50-65. doi:10.23919/JCC.2021.05.004.

    [32] HUANG Jie, WANG Chengxiang, BAI Lu, et al. A big data enabled channel model for 5G wireless communication systems[J]. IEEE Transactions on Big Data, 2020,6(2):211-222. doi:10. 1109/TBDATA.2018.2884489.

    [33] CYBENKO G. Approximation by superpositions of a sigmoidal function[J]. Mathematics of Control Signals and Systems, 1989,2(4):303-314. doi:10. 1007/BF02551274.

    [35] ZHANG Jianhua, TANG Pan, YU Li, et al. Channel measurements and models for 6G: current status and future outlook[J]. Frontiers of Information Technology & Electronic Engineering, 2020,21( 1):39-61. doi:10. 1631/FITEE. 1900450.

    [36] HU Zhengdong, LI Yuanbo, HAN Chong. Transformer-based GAN for terahertz spatial-temporal channel modeling and generating[EB/OL]. (2023-06-12). https://arxiv.org/abs/2306.06902.

    [37] ZHENG Chenglong, LI Hui, ZANG Huaping, et al. Terahertz polarization detection based on the mode analysis of longitudinally polarized vortices[J]. Optics & Laser Technology, 2024( 170): 110210. doi:10. 1016/j.optlastec.2023. 110210.

    [38] ODINTSOVA T A,KOROLEVA A O,SIMONOVA A A,et al. The atmospheric continuum in the"terahertz gap"region(15-700 cm -1):review of experiments at SOLEIL synchrotron and modeling[J]. Journal of Molecular Spectroscopy, 2022(386): 111603. doi: 10. 1016/j.jms.2022. 111603.

    [39] AZPILICUETA L, SCHULTZE A, CELAYA-ECHARRI M, et al. Diffuse-scattering-informed geometric channel modeling for THz wireless communications systems[J]. IEEE Transactions on Antennas and Propagation, 2023, 71( 10): 8226-8238. doi: 10. 1109/TAP.2023.3307868.

    [40] ZHU Jieao,WAN-ZHONG Chichao,DAI Linglong,et al. Electromagnetic information theory:fundamentals,modeling,applications, and open problems[J/OL]. IEEE Wireless Communications: 1-7. doi:10. 1109/MWC.019.2200602.

    [41] CUI Mingyao,DAI Linglong. Near-field wideband beamforming for extremely large antenna arrays [EB/OL]. (2023-08-22). https: //arxiv.org/abs/2109. 10054.

    [42] KOKKONIEMI J, LEHTOM?KI J, PETROV V, et al. Frequency domain penetration loss in the terahertz band[C]// 2016 Global Symposium on Millimeter Waves(GSMM) & ESA Workshop on Millimetre-Wave Technology and Applications. Espoo, Finland: IEEE, 2016: 1-4. doi:10. 1109/GSMM.2016.7500309.

    [43] WU Yongzhi,KOKKONIEMI J,HAN Chong,et al. Interference and coverage analysis for terahertz networks with indoor blockage effects and line-of-sight access point association[J]. IEEE Transactions on Wireless Communications, 2021, 20(3): 1472-1486. doi:10. 1109/TWC.2020.3033825.

    [44] ECKHARDT J M, PETROV V, MOLTCHANOV D, et al. Channel measurements and modeling for low-terahertz band vehicular communications[J]. IEEE Journal on Selected Areas in Communications, 2021, 39(6): 1590-1603. doi: 10. 1109/JSAC. 2021. 3071843.

    [45] HEADLAND D,MONNAI Y,ABBOTT D,et al. Tutorial: terahertz beamforming, from concepts to realizations[J]. APL Photonics, 2018,3(5):051101. doi:10. 1063/ 1.5011063.

    [46] SINGH A,PETROV V, GUERBOUKHA H,et al. Wavefront engineering:realizing efficient terahertz band communications in 6G and beyond[J/OL]. IEEE Wireless Communications: 1-7. doi:10. 1109/MWC.019.2200583.

    LIU Siqi, LIN Changxing, LIU Juan, DENG Xianjin. A review on the characteristics of terahertz near field communication channels[J]. Journal of Terahertz Science and Electronic Information Technology , 2024, 22(6): 647
    Download Citation