头像
个人主页
周康
副教授
国家级人才
所属单位:
信息科学与技术学部
电子科学与技术学院
行政职务:
联系信息:
kzhou@eitech.edu.cn
研究方向:

微波毫米波器件与系统、射频集成电路与系统、相控阵与多波束天线

B5G/6G无线通信、低轨卫星通信、雷达感知与成像、无线能量传输与收集

个人简介:

周康,国家高层次青年人才,宁波东方理工大学副教授、研究员、博士生导师,上海交通大学和中国科学技术大学兼职博导,中国电子学会高级会员,国际无线电科学联盟(URSI)高级会员,IEEE微波理论与技术协会(MTT-S) TC-4技术委员会委员。获南京理工大学学士与博士学位,曾在加拿大蒙特利尔大学做博士后研究,师从吴柯院士。主要研究方向为面向B5G/6G无线通信、低轨卫星通信、雷达感知与成像、无线能量传输与收集技术的微波/毫米波/太赫兹器件与系统、射频集成电路与系统、相控阵与多波束天线等。主持国家自然科学基金-海外优青、浙江省自然科学基金、宁波市甬江人才工程、宁波市重点研发计划等科研项目5项。发表学术论文近80篇,包括SCI期刊论文40余篇、IEEE Transactions论文25篇。申请国家发明专利7项,其中获授权美国专利1项、中国专利2项。Google Scholar引用1800余次,单篇最高被引200余次,H指数23。入选斯坦福大学全球前2%顶尖科学家榜单(2025、2024)。


研究领域:

微波毫米波无源器件:基于基片集成波(SIW)及声波(SAW/BAW)技术的多功能滤波器件

射频集成电路与系统:基于Si/SiC/Glass等芯片工艺的太赫兹器件与系统

相控阵与多波束天线多频段/多功能多波网络与阵列天线

B5G/6G无线通信、低轨卫星通信、雷达感知与成像、无线能量传输与收集系统

AI赋能的射频功率放大器高效数字预失真(DPD)技术


教育背景:

2008.09-2012.06:南京理工大学,学士(电子信息工程)

2012.09-2019.01:南京理工大学,博士(电子科学与技术)


工作经历:

2019.07-2022.07:蒙特利尔大学,博士后(合作导师:吴柯院士)

2022.10-2023.11:宁波东方理工大学,助理教授

2023.11-至今:      宁波东方理工大学,副教授


荣誉获奖:

入选斯坦福大学全球前2%顶尖科学家榜单(2025、2024)

2024:IEEE T-MTT杰出审稿人

2023:国家自然科学基金优秀青年科学基金(海外)

2023:宁波市甬江人才工程青年创新人才

2020:南京理工大学优秀博士学位论文


学术兼职:

  • 2025-至今:中国电子学会高级会员

  • 2023-至今:IEEE MTT-S TC-4技术委员会委员

  • 2021-至今:国际无线电科学联盟(URSI)高级会员

国际会议TPC委员:IEEE IWS2026/2025/2024、IMWS-AMP2025/2024

国际会议分论坛主席:IEEE IWS2025/2024、IMWS-AMP2025/2024/2023、RFIT2024、APCAP2024

  • 50余个国际期刊审稿人:IEEE T-MTT、T-AP、T-IE、T-TST、TCAS-I、TCAS-II、T-CPMT、T-NANO、IoT-J、MWTL、AWPL、EDL、PTL、JMW等

招生信息:

团队每年有博士生名额数个,招生高校包括:浙江大学、上海交通大学、中国科学技术大学、香港理工大学。热忱欢迎优秀学子加入,一起助力全球射频前沿技术的创新与发展!


学术主页:

IEEE Xplore:https://ieeexplore.ieee.org/author/37086015784

Google Scholar:https://scholar.google.com/citations?hl=en&user=I0tFqLEAAAAJ

Web of Sicence:https://www.webofscience.com/wos/author/record/483696


科研项目:

  1. 国家自然科学基金优秀青年科学基金项目(海外),2024.01–2026.12,主持

  2. 浙江省和宁波市高价值专利组合培育项目,2025.07–2027.07,主持

  3. 浙江省自然科学基金探索青年项目,2024.01–2026.12,主持

  4. 宁波市甬江人才工程青年创新人才项目,2024.01–2028.12,主持

  5. 宁波市重点研发计划暨“揭榜挂帅”,2023.02–2026.01,主持


发明专利:

  1. 周康,刘怡沛. 一种大频比基片集成波导滤波跨接器及方法. CN202611102119.9

  2. 周康,王俊森,贾建国,毛方迪,章文才. 一种兼顾低复杂度与高线性度的神经网络数字预失真方法及系统. CN202611012624.4

  3. 周康,罗政海. 一种多通道SIW滤波跨接器及通信装置. CN202511365433.1

  4. 周康,沈书豪. 一种基于双模巴特勒矩阵设计实的双频多波束天线阵列. CN202411254570.3

  5. 周康,沈书豪,贾建国,章文才. 一种基于四通道滤波跨接器的滤波多波束阵列及方法. ZL202610708771.9(授权)

  6. 周康,沈书豪. 一种基于滤波跨接器的双极化多波束天线阵列及方法. ZL202511239179.0(授权)

  7. Kang Zhou, Ke Wu. Substrate-integrated waveguide filtering crossover having a dual mode rectangular cavity coupled to eight single mode square cavities. U.S. Patent 11509031B2, 2022-11-22.(授权)


代表性论文:(*表示通讯作者)

  1. J. Wang, Q. Zhang, C. Jiang, R. Han, H. Chang, K. Zhou*, F. Liu*. Topology-evolving neural network for digital predistortion of RF power amplifiers. IEEE Transactions on Microwave Theory and Techniques, 2026, 74(9): 115.

  2. S. Shen, K. Zhou*. Filtering multibeam antenna arrays based on substrate integrated waveguide filtering crossovers: A proof of concept. IEEE Transactions on Microwave Theory and Techniques, 2026, 74(8): 1–13.

  3. Z. Luo, K. Zhou*. A novel methodology for implementing planar ultra-wide stopband SIW bandpass filters and filtering crossover. IEEE Transactions on Microwave Theory and Techniques, 2026, 74(6): 5495–5508.

  4. Z. Luo, K. Zhou*, F. Zhu, G. Zhang, K. Wu. A general design methodology for multichannel SIW filtering crossovers with flexible frequency responses. IEEE Transactions on Components, Packaging and Manufacturing Technology, 2026, 16(6): 13591370.

  5. M. R. Jiao, L. F. Sun, X. Zhao, F. Zhu, W. Yu, P. Chu, K. Zhou, G. Q. Luo. Miniaturized dual-mode substrate integrated waveguide bandpass filters with wide stopbands using mixed-mode cavities. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(11): 9217–9225.

  6. J. Wang, R. Han, Q. Zhang, C. Jiang, H. Chang, K. Zhou*, F. Liu*. Learnable edge-located activation neural network for digital predistortion of RF power amplifiers. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(10): 7105–7118.

  7. Z.-Q. Zhang, L. Zhou, C.-R. Zhang, K. Zhou. A silicon-based D-band miniaturized diplexer using perturbed dual-mode junction-cavity. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(9): 5918–5928.

  8. M. R. Jiao, D. N. Xu, F. Zhu, W. Yu, P. Chu, K. Zhou, G. Q. Luo. Compact multiband bandpass filters with improved stopband performance using modified folded substrate integrated rectangular cavities. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(8): 5226–5237.

  9. J. Wang, C. Jiang, R. Han, Q. Zhang, H. Chang, K. Zhou, F. Liu. Input amplitude-based adaptive tuning neural networks for digital predistortion of Doherty power amplifiers. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(4): 2217–2229.

  10. S. Shen, K. Zhou*, Y. Lu, K. Wu. A dual-band Butler matrix-based millimeter-wave dual-band multibeam antenna array using a simple dual-mode transmission line scheme. IEEE Transactions on Microwave Theory and Techniques, 2025, 73(4): 2170–2182.

  11. Y. Hu, Y. Lu, K. Zhou, Q. You, J. Huang. Wideband hollow-waveguide dual-polarized antenna with reduced metal layers. IEEE Transactions on Antennas and Propagation, 2024, 72(1): 1027–1032.

  12. W. Lin, K. Zhou*, K. Wu*. Band-reconfigurable tunable bandpass filters based on mode-switching concept. IEEE Transactions on Microwave Theory and Techniques, 2023, 71(3): 1125–1135.

  13. D. Ma, K. Zhou, H. Xie, T. Huang, W. Wu. Compact or wide-stopband SIW diplexers with high intrinsic isolations based on orthogonal dual modes. IEEE Transactions on Circuits and Systems II: Express Briefs, 2023, 70(1): 71–75.

  14. K. Zhou*, K. Wu. Substrate integrated waveguide multiband bandpass filters and multiplexers: Current status and future outlook. IEEE Journal of Microwaves, 2023, 3(1): 466–483. (Invited Paper)

  15. K. Zhou*, K. Wu.  Multichannel substrate integrated waveguide diplexers based on orthogonal dual modes and split-type multiband responses. IEEE Transactions on Microwave Theory and Techniques, 2022, 70(1): 356–366.

  16. K. Zhou*, K. Wu. Miniaturized diplexers with large frequency ratios based on common half-mode dual-mode SIW junction-cavities. IEEE Transactions on Microwave Theory and Techniques, 2021, 69(12): 5343–5350.

  17. K. Zhou*, K. Wu. Wide-stopband substrate-integrated waveguide filtering crossovers with flexibly allocated channel frequencies and bandwidths. IEEE Transactions on Microwave Theory and Techniques, 2021, 69(7): 3264–3274.

  18. W. Lin, K. Zhou, K. Wu. Tunable bandpass filters with one switchable transmission zero by only tuning resonances. IEEE Microwave and Wireless Components Letters, 2021, 31(2): 105–108.

  19. H.-W. Xie, K. Zhou, C.-X. Zhou, W. Wu. Compact SIW diplexers and dual-band bandpass filter with wide-stopband performances. IEEE Transactions on Circuits and Systems II: Express Briefs, 2020, 67(12): 2933–2937.

  20. H.-W. Xie, K. Zhou, C.-X. Zhou, W. Wu. Wide-stopband SIW filters using modified multi-spurious modes suppression technique. IEEE Transactions on Circuits and Systems II: Express Briefs, 2020, 67(12): 2883–2887.

  21. K. Zhou*, C.-X. Zhou, H.-W. Xie, W. Wu. Synthesis design of SIW multiband bandpass filters based on dual-mode resonances and split-type dual- and triple-band responses. IEEE Transactions on Microwave Theory and Techniques, 2019, 67(1): 151–161.

  22. K. Zhou*, C.-X. Zhou, W. Wu. Dual-mode characteristics of half-mode SIW rectangular cavity and applications to dual-band filters with widely separated passbands. IEEE Transactions on Microwave Theory and Techniques, 2018, 66(11): 4820–4829.

  23. H.-W. Xie, K. Zhou*, C.-X. Zhou*, W. Wu. Substrate-integrated waveguide triple-band bandpass filters using triple-mode cavities. IEEE Transactions on Microwave Theory and Techniques, 2018, 66(6): 2967–2977.

  24. K. Zhou*, C.-X. Zhou, W. Wu. Compact SIW diplexer with flexibly allocated bandwidths using common dual-mode cavities. IEEE Microwave and Wireless Components Letters, 2018, 28(4): 317–319.

  25. K. Zhou*, J.-Q. Ding, C.-X. Zhou, W. Wu. W-band dual-band quasi-elliptical waveguide filter with flexibly allocated frequency and bandwidth ratios. IEEE Microwave and Wireless Components Letters, 2018, 28(3): 206–208.

  26. K. Zhou*, C.-X. Zhou, W. Wu. Substrate-integrated waveguide dual-band filters with closely spaced passbands and flexibly allocated bandwidths. IEEE Transactions on Components, Packaging and Manufacturing Technology, 2018, 8(3): 465–472.

  27. K. Zhou*, C.-X. Zhou, W. Wu. Substrate-integrated waveguide dual-mode dual-band bandpass filters with widely controllable bandwidth ratios. IEEE Transactions on Microwave Theory and Techniques, 2017, 65(10): 3801–3812.

  28. S.-Q. Han, K. Zhou*, J.-D. Zhang, C.-X. Zhou, W. Wu. Novel substrate integrated waveguide filtering crossover using orthogonal degenerate modes. IEEE Microwave and Wireless Components Letters, 2017, 27(9): 803–805.

  29. J.-Q. Ding, S.-C. Shi, K. Zhou, D. Liu, W. Wu. Analysis of 220 GHz low-loss quasi-elliptic waveguide bandpass filter. IEEE Microwave and Wireless Components Letters, 2017, 27(7): 648–650. 

  30. C.-X. Zhou, P.-P. Guo, K. Zhou, W. Wu. Design of a compact UWB filter with high selectivity and super wide stopband. IEEE Microwave and Wireless Components Letters, 2017, 27(7): 636–638. 

  31. K. Zhou*, C.-X. Zhou, W. Wu. Resonance characteristics of substrate-integrated rectangular cavity and their applications to dual-band and wide-stopband bandpass filters design. IEEE Transactions on Microwave Theory and Techniques, 2017, 65(5): 1511–1524.

  32. J.-Q. Ding, S.-C. Shi, K. Zhou, Y. Zhao, D. Liu, W. Wu. WR-3 band quasi-elliptical waveguide filters using higher order mode resonances. IEEE Transactions on Terahertz Science and Technology, 2017, 7(3): 302–309.

东方理工毫米波及太赫兹电路与系统实验室(EIT-mmW&THz lab),由国家级青年人才周康副教授领衔并担任PI,目前有正高职称1人、博士后2人、博士生11人。课题组主要面向B5G/6G无线通信、低轨卫星通信、毫米波雷达感知与成像、无线能量传输与收集等射频前沿技术,对微波/毫米波/太赫兹器件与系统、射频集成电路与系统、相控阵与多波束天线等方向研究与探索



更新时间:2026-08-17
总访问量:10
周康
返回
头像
周康 个人主页