DOI QR코드

DOI QR Code

미래 이동통신을 위한 밀리미터파와 테라헤르츠파 대역 회로 및 시스템 기술 동향

Millimeter and Terahertz Wave Circuit and System Technologies and Trends for Future Mobile Communications

  • 장승현 (기가통신미래기술연구그룹) ;
  • 공선우 (기가통신미래기술연구그룹) ;
  • 이희동 (기가통신미래기술연구그룹) ;
  • 박지훈 (기가통신미래기술연구그룹) ;
  • 김광선 (기가통신미래기술연구그룹) ;
  • 이광천 (기가통신미래기술연구그룹)
  • 발행 : 2018.10.01

초록

One of the most remarkable aspects of the recently completed 3GPP release-15 (5G new radio phase 1) is the fact that some millimeter-wave bands have been officially approved for 5G mobile communications. Because the demand for higher transmission capacity has only grown, other millimeter-wave or even higher-frequency terahertz-wave bands have attracted more attention over time. Based on this effort, this paper reviews and discusses the existing technologies and their trends in high-frequency circuits and systems at the millimeter and terahertz-wave bands, particularly for future mobile communications.

키워드

과제정보

연구 과제번호 : 5G 이동통신용 밀리미터파(40GHz 이하) 빔포밍 부품 개발

연구 과제 주관 기관 : 정보통신기술진흥센터

참고문헌

  1. J.S. Belrose, "Fessenden and Marconi: Their Differing Technologies and Transatlantic Experiments During the First Decade of This Century," in Proc. Int. Conf. 100 Years of Radio, London, UK, Sept. 5-7, 1995, pp. 32-43.
  2. TTA 보도자료, "5세대 이동통신(5G), 3GPP 글로벌 표준 최종확정," 2018. 6. 14.
  3. J. Smith, "Verizon to Use SAMSUNG for First Commercial 5G Network Rollout," ZDNet, Jan.3, 2018.
  4. SAMSUNG white paper, "Analysis of mmWave Performance," July. 2017.
  5. T.J. Kim, "A mmWave-Based Mobile Communication System (Giga KOREA-5G)," 5G Global Summit, Dec., 3rd, 2015.
  6. 이훈, "밀리미터파 기가급 이동통신기술," 한국통신학회 동계학술대회특별초청강연, 2016.
  7. Qualcomm, https://www.qualcomm.com/videos/mmwave-5g-nr-prototype-demo-video
  8. J. Dunworth et al., "A 28 GHz Bulk-CMOS Dual-Polarization Phased-Array Transceiver with 24 Channels for 5G User and Basestation Equipment," IEEE Int. Solid-State Circuits Conf., San Francisco, CA, USA, Feb. 11-15, 2018, pp. 70-72.
  9. Anokiwave, https://www.anokiwave.com
  10. Anokiwave, "AWMF-0157 28 GHz Silicon 5G Tx/Rx Quad Core IC," Product Overview.
  11. B. Sadhu et al., "A 28 GHz 32-Element Phased-Array Transceiver IC with Concurrent Polarized Beams and 1.4 Degree Beam-Steering Resolution for 5G Communication," IEEE Int. Solid-State Circuits Conf. (ISSCC), San Francisco, CA, USA, Feb. 2017, pp. 128-129.
  12. X. Gu et al., "A Multilayer Organic Package with 64 Dual-polarized Antennas for 28GHz 5G Communication," IEEE Int. Microw. Symp.(IMS), Honololu, HI, USA, June 2017, pp. 1899-1901.
  13. K. Kibaroglu et al., "An Ultra Low-Cost 32-Element 28 GHz Phased-Array Transceiver with 41 dBm EIRP and 1.0-1.6 Gbps 16-QAM link at 300 Meters," IEEE Radio Frequency Integr. Circuits Symp.(RFIC), Honolulu, HI, USA, June 2017, pp. 73-76.
  14. Huawei, "Huawei and NTT DOCOMO Mark Milestone in 5G Joint Trials with Successful High-Speed and Long Distance mmWave Field Trial at Tokyo Skytree," Huawei News, Dec. 7, 2017.
  15. H.R. Karimi, "Bringing 5G to Reality," UK SPF workshop: 5G, Sept. 18, 2017.
  16. T. Nagatsuma et al., "Advances in Terahertz Communications Accelerated by Photonics," Nature Photonics, vol. 10, no. 6, 2016, pp. 371-379. https://doi.org/10.1038/nphoton.2016.65
  17. T. Ishibashi et al., "InP/InGaAs Uni-Traveling-Carrier Photodiodes," IEICE Trans. Electron., vol. 83, no. 6, 2000, pp. 938-949.
  18. NTT Electronics Corporation, UTC-PD Photomixer.
  19. VDI, VDI AMC-I Standard Product.
  20. K. Sengupta et al., "A 0.28 THz Power-Generation and Beam-Steering Array in CMOS Based on Distributed Active Radiators," IEEE J. Solid-State Circuits, vol. 47, no. 12, 2012, pp. 3013-3031. https://doi.org/10.1109/JSSC.2012.2217831
  21. A. Hirata et al., "High Directivity Photonic Emitter Using Photodiode Module Integrated with HEMT Amplifier for 10-Gbit/s Wireless Link," IEEE Trans. Microw. Theory Tech., vol. 52, no. 8, Aug. 2004, pp. 1843-1850. https://doi.org/10.1109/TMTT.2004.831581
  22. A. Hirata et al., "120-GHz-Band Wireless Link Technologies For outdoor 10-Gbit/s Data Transmission," IEEE Trans. Microw. Theory Tech., vol. 60, no. 3, 2012, pp. 881-895. https://doi.org/10.1109/TMTT.2011.2178256
  23. Y.B. Jung et al., "Cassegrain Antenna with Hybrid Beam Steering Scheme for Mobile Satellite Communications," IEEE Trans. Antennas Propag., vol. 57, no. 5, 2009, pp. 1367-1372. https://doi.org/10.1109/TAP.2009.2016706
  24. A. Hirata et al., "5.8-km 10-Gbps Data Transmission Over a 120-GHz-Band Wireless Link," IEEE Int. Conf. Wireless Inform. Technol. Syst., Honolulu, HI, USA, 2010, pp. 1-4..
  25. C. Wang et al., "0.34-THz Wireless Link Based on High-Order Modulation for Future Wireless Local Area Network Applications," IEEE Trans. THz Sci. Technol., vol. 4, no. 1, 2014, pp. 75-85. https://doi.org/10.1109/TTHZ.2013.2293119
  26. I. Kallfass et al., "64 Gbit/s Transmission Over 850 m Fixed Wireless Link at 240 GHz Carrier Frequency," J. Infrared, Millimeter, Terahertz Waves, vol. 36, no. 2, 2015, pp. 221-233. https://doi.org/10.1007/s10762-014-0140-6
  27. X. Pang et al., "260 Gbit/s Photonic-Wireless Link in the THz Band," IEEE Photonics Conf.(IPC), Waikoloa, HI, USA, Oct. 2016, pp. 1-2.