电子科学与工程学院
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| 导师代码: |
21797
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| 导师姓名: |
张建
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| 性 别: |
男 |
| 特 称: |
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| 职 称: |
副研究员
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| 学 位: |
工学博士学位
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| 属 性: |
专职 |
| 电子邮件: |
jiann.zhang@uestc.edu.cn
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| 学术经历:
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近五年以第一作者在IEEE TMTT、EDL、TED、MWTL等微波、毫米波领域高水平期刊和会议发表论文30余篇,授权国家发明专利5项。主持中国博士后科学基金面上项目、国家自然科学基金青年项目、四川省青年科学基金项目等多个国家级、省部级科研项目,并作为核心人员主研或参与国家自然科学基金卓越研究群体项目、JKW和ZF的多个纵向课题,入选2026年度博士后创新人才支持计划。
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| 个人简介:
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教育经历:2019~2024 电子科大 电子科学与技术 硕博连读, 工作经历:2025~2026 电子科技大学师资博士后、特聘副研究员 所在科研团队:毫米波太赫兹源技术及应用团队
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| 科研项目:
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1、场分布调控提升带状注行波管注-波互作用效率新机制的研究,国家自然科学基金青年科学基金(C类)项目,2026-2028,主持。
2、带状注行波管中基于场分布均衡效率提升新机制研究,中国博士后科学基金面上资助项目,2026-2027,主持。
3、基于异形弗洛奎结构超大功率行波管新机制研究,四川省自然科学基金青年科学基金(B类)项目,2026-2027,主持。
4、太赫兹科学技术前沿(延续资助),国家自然科学基金卓越创新研究群体项目,2025-2029,参研。
5、太赫兹科学技术前沿,国家自然科学基金基础科学中心项目,2020-2024,参研。
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| 研究成果:
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文章
[1]J. Zhang, YY.Wei et al., “Demonstration of a 270-W G-Band Prototype TWT With ?3 dB Bandwidth Over 18 GHz,” IEEE Transactions on Microwave Theory and Techniques, vol. 74, no. 6, pp. 4961–4968, Jun. 2026, doi: 10.1109/TMTT.2026.3670400. (SCI、EI源刊,中科院一区(top期刊),第一作者)
[2]J. Zhang, YY.Wei et al., “Investigation of a Broadband High-Power Incline Flat-Roofed Sine Waveguide for G-Band Sheet Beam TWT Amplifier,” IEEE Transactions on Plasma Science, vol. 53, no. 10, pp. 2920–2926, Oct. 2025, doi: 10.1109/TPS.2025.3598077.
[3]J. Zhang, YY.Wei et al., “Demonstration of an Upgrading G-Band Rhombic Grating Slotted Sine Waveguide TWT,” IEEE Transactions on Electron Devices, vol. 72, no. 7, pp. 3854–3860, Jul. 2025, doi: 10.1109/TED.2025.3569266.
[4]J. Zhang, J. Xu, et al., Study on Staggered U-shaped Groove Sine Waveguide for G-band TWT [J], IEEE Trans. Microwave Theory Techn., pp. 1–8, Nov. 2024, doi: 10.1109/TMTT.2024.3487615. (SCI、EI源刊,中科院一区(top期刊),第一作者)
[5]J. Zhang, J. Xu, et al., Investigation of a Modified Flat-Roofed Sine Waveguide Slow-Wave Structure for Wideband 220-GHz TWT[J], IEEE Microwave and Wireless Components Letters, pp. 1-4, Aug. 2022, doi: 10.1109/LMWC.2022.3193447. (SCI、EI源刊,中科院二区,第一作者)
[6]J. Zhang, J. Xu, J. Cai, et al., A Novel Non-Quasi-2D Slow-Wave Structure for THz Sheet Beam TWTs[J], IEEE Electron Device Letters, vol. 45, no. 4, pp. 700-703, Apr. 2024, doi: 10.1109/LED.2024.3362931. (SCI、EI源刊,中科院二区,第一作者)
[7]J. Zhang, J. Cai, J. Xu, et al., Study on Efficiency-Enhancing Mechanism for SB TWT by Evenly Distributing SWS Impedance[J], IEEE Trans. Electron Devices, vol. 71, no. 10, pp. 6388-6394, Oct. 2024, doi: 10.1109/TED.2024.3449250.
[8]张建 et al., 基于平顶正弦波导的高功率G波段行波管研究[C], 2020年IET(中国)真空电子学博士生学术论坛,长沙,中国,2020年11月.(第一作者)
[9]J. Zhang et al., G-band phase-velocity-taper Traveling Wave Tube Based On Quasi Flat-roofed Sine Waveguide[C], in 2021 22nd International Vacuum Electronics Conference (IVEC), Apr. 2021, pp. 1-2. doi: 10.1109/IVEC51707.2021.9722484. (第一作者)
[10]J. Zhang et al., Design of a 100-W 20-GHz Bandwith G-band TWT Based on Quasi Flat-roofed Sine Waveguide[C], in 2021 46th International Conference on Infrared, Millimeter and Terahertz Waves (IRMMW-THz), Aug. 2021, pp. 1-2. doi: 10.1109/IRMMW-THz50926.2021.9566957. (第一作者)
[11]J. Zhang et al., Investigation of Trapezoid Double Staggered Grating SWS for G-band CW TWT[C], in 2023 24th International Vacuum Electronics Conference (IVEC), Chengdu, China: IEEE, Apr. 2023, pp. 1-2. doi: 10.1109/IVEC56627.2023.10157682. (第一作者)
[12]张建 et al., G波段宽带大功率余弦顶正弦波导行波管的设计与研究[C],中国电子学会真空电子学分会第22届年会,广州,中国,2024年5月. (第一作者)
[13]张建 et al., 基于阻抗均衡技术大功率宽带宽263GHz带状注行波管研究[C],中国电子学会真空电子学分会第23届年会,绵阳,中国,2026年8月. (第一作者)
[14]J. Zhang, P. Yin, J. Cai, J. Xu, and Y. Wei, “A Broadband High-Power 263 GHz TWT Based on Rhombic Grating Slotted Sine Waveguide,” in 2025 Cross Strait Radio Science and Wireless Technology Conference (CSRSWTC), Nov. 2025, pp. 1–3. doi: 10.1109/CSRSWTC67757.2025.11384486.
[15]Z. X. Su, J. C. Cai, X. C. Lin, J. Zhang, X. K. Zhang, Z. Zhang, D. C. Chen, G. Y. Pan, Z. X. Liang, M. Asad, P. C. Yin, J. Xu, L. N. Yue, H. R. Yin, Y. Xu, G. Q. Zhao, W. X. Wang, and Y. Y. Wei, “Study on Miniaturized Periodic Reverse Permanent Magnet Focusing for Multibeam Klystrons,” IEEE Electron Device Letters, vol. 46, no. 12, pp. 2321–2324, Dec. 2025, doi: 10.1109/LED.2025.3619671.
[16]G. Guo, H. Wang, Z. Yang, J. Zhang, T. Zhou, Z. Wang, and Y. Wei, “Demonstration of Low-Loss and Miniaturized Terahertz Radial Waveguide Power Divider/Combiner,” IEEE Transactions on Electron Devices, pp. 1–7, 2025, doi: 10.1109/TED.2025.3598234.
[17]W. Fan, P. Yin, J. Xu, J. Zhang, Y. Ouyang, Z. Su, J. Cai, L. Yue, H. Yin, Y. Xu, G. Zhao, W. Wang, and Y. Wei, “A New Method for High Power Sheet Beam Traveling Wave Tube by Rotating the Beam Tunnel,” IEEE Transactions on Electron Devices, vol. 72, no. 9, pp. 5169–5175, Sep. 2025, doi: 10.1109/TED.2025.3585903.
[18]J. Luo, J. Xu, P. Yin, J. Zhang, D. Jia, W. Fan, Y. Ouyang, L. Yue, J. Cai, H. Yin, G. Wu, Z. Wang, Y. Gong, and Y. Wei, “Design and Analysis of a 0.33-THz Sine-Shaped Folded Waveguide Traveling Wave Tube,” IEEE Transactions on Electron Devices, vol. 70, no. 6, pp. 2814–2820, Jun. 2023, doi: 10.1109/TED.2023.3240685.
[19]J. Luo, J. Xu, P. Yin, J. Zhang, D. Jia, J. Cai, L. Yue, H. Yin, Z. Wang, and Y. Wei, “Design and Cold-Test of 0.34-THz Modified Slotted Sine Waveguide Traveling Wave Tube,” IEEE Trans. Electron Devices, vol. 70, no. 10, pp. 5359–5366, Oct. 2023, doi: 10.1109/TED.2023.3307663.
[20]Z. X. Su, J. C. Cai, P. C. Yin, D. C. Chen, J. Zhang, X. K. Zhang, C. Zhang, L. Zeng, J. Xu, L. N. Yue, H. R. Yin, Y. Xu, G. Q. Zhao, W. X. Wang, and Y. Y. Wei, “Investigation on the Effects of Assembly Gaps in the Resonant Cavity of Klystrons,” IEEE Electron Device Letters, vol. 45, no. 10, pp. 1985–1988, Oct. 2024, doi: 10.1109/LED.2024.3448452.
[21]P. C. Yin, J. Xu, R. C. Yang, J. J. Luo, J. Zhang, D. D. Jia, W. Y. Fan, Y. Ouyang, L. N. Yue, J. C. Cai, H. R. Yin, G. Q. Zhao, G. Guo, L. Xu, W. X. Wang, W. X. Liu, and Y. Y. Wei, “Sheet Electron Optical System for a 1.03-THz Traveling-Wave Tube,” IEEE Electron Device Lett., vol. 43, no. 8, pp. 1343–1346, Aug. 2022, doi: 10.1109/LED.2022.3187160.
[22]P. Yin, J. Xu, R. Yang, L. Yue, J. Luo, J. Zhang, D. Jia, W. Fan, Y. Ouyang, H. Yin, G. Zhao, G. Guo, J. Liu, L. Xu, W. Wang, W. Liu, D. Li, and Y. Wei, “An Approach to Focus the Sheet Electron Beam in the Planar Microstrip Line Slow Wave Structure,” IEEE Trans. Electron Devices, vol. 69, no. 6, pp. 3373–3379, Jun. 2022, doi: 10.1109/TED.2022.3163370.
[23]D. Jia, H. Yin, J. Xu, L. Yue, R. Yang, P. Yin, J. Luo, J. Zhang, J. Cai, G. Guo, S. Yu, W. X. Wang, D. Li, and Y. Wei, “Bandwidth enhancement for over-mode traveling-wave amplifiers,” Physics of Plasmas, vol. 29, no. 8, p. 083105, Aug. 2022, doi: 10.1063/5.0097224.
[24]R. Yang, L. Yue, J. Xu, P. Yin, J. Luo, H. Wang, D. Jia, J. Zhang, H. Yin, J. Cai, G. Guo, G. Zhao, W. Wang, D. Li, and Y. Wei, “Broadband-Printed Traveling-Wave Tube Based on a Staggered Rings Microstrip Line Slow-Wave Structure,” Electronics, vol. 11, no. 3, p. 384, Jan. 2022, doi: 10.3390/electronics11030384.
[25]Z. Liang, J. Cai, G. Pan, Z. Su, X. Zhang, Z. Zhang, M. Asad, L. Zeng, C. Zhang, J. Zhang, X. Lin, P. Yin, J. Xu, L. Yue, H. Yin, Y. Xu, G. Zhao, W. Wang, and Y. Wei, “Study on a Novel Receiver Protector Using Ultra-Compact Magnet-Free Klystron Scheme,” IEEE Transactions on Plasma Science, vol. 53, no. 11, pp. 3293–3299, Nov. 2025, doi: 10.1109/TPS.2025.3614687.
[26]Z. Guo, Y. Wei, J. Xu, J. Zhang, H. Yin, L. Yue, G. Zhao, and W. Wang, “G-Band Wide-Bandwidth Traveling-Wave Tube Based on Sine Waveguide,” in 2022 23rd International Vacuum Electronics Conference (IVEC), Apr. 2022, pp. 348–349. doi: 10.1109/IVEC53421.2022.10292276.
[27]J. Luo, J. Xu, P. Yin, J. Zhang, D. Jia, W. Fan, Y. Ouyang, J. Cai, L. Yue, H. Yin, Z. Wang, Y. Gong, and Y. Wei, “Study of a 0.67 THz TWT Based on Slotted Quasi Sine Waveguide,” in 2023 24th International Vacuum Electronics Conference (IVEC), Chengdu, China: IEEE, Apr. 2023, pp. 1–2. doi: 10.1109/IVEC56627.2023.10157132.
[28]P. Yin, J. Cai, J. Xu, J. Zhang, L. Yue, H. Yin, Y. Xu, G. Zhao, W. Wang, and Y. Wei, “The New Method to Focus Multiple Sheet Electron Beam by Periodic Cusped Magnets With Multi-Zeros-Point Bias Magnetic Field,” IEEE Electron Device Letters, vol. 46, no. 4, pp. 652–655, Apr. 2025, doi: 10.1109/LED.2025.3541232.
[29]B. Gao, L. Yue, J. Xu, J. Zhang, P. Yin, L. Feng, Z. Su, X. Zhang, W. Li, W. Fan, J. Liu, H. Yin, Y. Xu, J. Cai, W. Wang, Y. Liu, and Y. Wei, “Development and Cold-Test Validation of a 326–356 GHz Backward-Wave Oscillator Based on a Sine Ridge Waveguide Slow-Wave Structure,” IEEE Transactions on Electron Devices, pp. 1–7, 2026, doi: 10.1109/TED.2026.3716694.
[30]P. Yin, J. Xu, S. Fang, R. Yang, J. Luo, J. Zhang, D. Jia, H. Yin, L. Yue, G. Zhao, G. Guo, L. Xu, W. Wang, and Y. Wei, “Electron optical system with integrated PCM for sheet electron beam devices,” Physics of Plasmas, vol. 28, no. 12, p. 123101, Dec. 2021, doi: 10.1063/5.0076651.
[31]W. Li, L. Yue, Y. Xu, P. Yin, J. Zhang, Z. Su, X. Zhang, J. Liu, J. Xu, H. Yin, J. Cai, G. Zhao, W. Wang, J. He, Q. Liu, and Y. Wei, “A Compact Hybrid Slow Wave Structure for Ka-Band High-Power TWTs With Low Gain Fluctuation,” IEEE Transactions on Plasma Science, vol. 53, no. 12, pp. 3741–3747, Dec. 2025, doi: 10.1109/TPS.2025.3629105.
[32]M. Asad, J. C. Cai, J. Zhang, Z. X. Su, X. K. Zhang, Z. Zhang, X. C. Lin, G. Y. Pan, Z. X. Liang, P. C. Yin, J. Xu, L. N. Yue, H. R. Yin, Y. Xu, G. Q. Zhao, W. X. Wang, and Y. Y. Wei, “Low-Loss Flexible PTFE Dielectric Waveguide Integrated With TE10 to HE11 Mode Converter for 220-GHz Traveling Wave Tube (TWT) Applications,” IEEE Transactions on Plasma Science, vol. 54, no. 7, pp. 3471–3478, Jul. 2026, doi: 10.1109/TPS.2026.3701795.
[33]Z. X. Su, J. C. Cai, X. C. Lin, X. K. Zhang, J. Zhang, Z. Zhang, G. Y. Pan, Z. X. Liang, P. C. Yin, L. N. Yue, J. Xu, H. R. Yin, Y. Xu, G. Q. Zhao, W. X. Wang, and Y. Y. Wei, “Compact and Lightweight PRPM Focusing and Field-Tuning Method for High-Power High-Perveance Klystrons,” IEEE Transactions on Plasma Science, vol. 54, no. 4, pp. 1480–1486, Apr. 2026, doi: 10.1109/TPS.2026.3668799.
[34]Z. X. Su, J. C. Cai, X. C. Lin, W. Li, X. K. Zhang, J. Zhang, Z. Zhang, D. C. Chen, G. Y. Pan, Z. X. Liang, M. Asad, P. C. Yin, L. N. Yue, J. Xu, H. R. Yin, Y. Xu, G. Q. Zhao, W. X. Wang, and Y. Y. Wei, “Investigation on Electric Field Uniformity in the Output Cavity of High-Power High-Efficiency Multibeam Klystrons,” IEEE Transactions on Electron Devices, vol. 73, no. 2, pp. 1027–1033, Feb. 2026, doi: 10.1109/TED.2025.3648689.
专利
[1] 张建,魏彦玉,徐进,等. 一种类梯形交错双栅慢波结构[P]. 中国,国家发明专利,授权专利号:ZL 202110406429.0,2022-04-19 (第一作者)
[2] 张建,魏彦玉,徐进,等. 一种余弦栅加载类正弦波导慢波结构[P]. 中国,国家发明专利,授权专利号:ZL 202110406466.1,2022-03-25(第一作者)
[3] 张建,魏彦玉,徐进,等. 一种倾斜类正弦波导慢波结构[P]. 中国,国家发明专利,授权公告号:ZL 202211004488.6,2024-12-03 (第一作者)
[4] 张建,魏彦玉,徐进,等. 一种展宽带宽的全金属慢波结构[P]. 中国,国家发明专利,授权公告号:ZL 202211091121.2,2024-12-03 (第一作者)
[5] 张建,魏彦玉,徐进,等. 一种宽带折叠全金属慢波结构[P]. 中国,国家发明专利,授权公告号:ZL202310328720.X,2025-12-05 (第一作者)
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| 专业研究方向:
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| 专业名称 |
研究领域/方向 |
招生类别 |
| 080900电子科学与技术 |
07太赫兹科学与技术,08太赫兹器件、系统及应用,16真空电子器件及应用 |
硕士学术学位 |
| 085400电子信息 |
01不区分研究方向 |
硕士专业学位 |
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