个人简介
陈梦琳,国家海外高层次青年人才项目获得者,深圳大学射频异质异构集成全国重点实验室特聘教授,博士生导师,IEEE高级会员。本科毕业于华中科技大学和英国伯明翰大学,获双学士学位,博士毕业于香港大学。曾赴伦敦玛丽女王大学担任访问学者,先后于香港大学电机与电子工程系、物理系担任博士后,后任香港理工大学研究助理教授。
长期从事电磁超材料、超表面和拓扑光子学领域研究,主持国家自然科学基金、广东省自然科学基金等项目。以第一或通讯作者身份发表国际期刊论文20余篇,如Physical Review Letters, Advanced Science, Laser & Photonics Reviews, IEEE Trans. Antennas Propag., IEEE Trans. Microwave Theory Tech等,出版John Wiley & Sons书籍专著3章节。获2025年中国通信学会科学技术奖二等奖。获2024年国际无线电科学联盟(URSI AT-RASC)青年科学家奖、2023年光子与电磁学研究国际研讨会(PIERS)青年科学家奖、2021年应用计算电磁学会(ACES)青年科学家奖。获2026年第11届电力与电子工程亚洲会议最佳创新研究奖、2025年第13届IEEE亚太天线与传播会议(APCAP)最佳学生论文奖。
个人主页:https://menglin-c.github.io/
主要研究方向
1.基于超材料、超表面的涡旋波与结构光场调控;
2.拓扑光子学及先进电磁学交叉学科研究,及其在微波/毫米波工程中的应用;
3.面向毫米波通信与集成系统的新型片上超表面设计。
招生与招聘
诚聘助理教授一名、研究员一名、博士后若干、科研助理若干,并热忱欢迎博士生、硕士生报考加入。团队依托射频异质异构集成全国重点实验室和毛军发院士团队,科研平台条件一流,经费充足,能为成员提供良好的发展支持。
有意向者请将个人简历发送至 mlchen@szu.edu.cn
代表性项目
1.深圳市高端人才启动项目
2.国家自然科学基金优青海外,2026-2029
3.深圳大学特聘教授启动项目,2026-2029
4.射频异质异构集成全国重点实验室自主课题,2026-2028
5.广东省自然科学基金面上项目,2025-2027
6.国家自然科学基金青年项目,2024-2026
代表性论文
1.S. Li, P. Li*, Z. Lan, Y. Li, H. Wong and M. L. N. Chen*, “Transparent Topological Meta-Diplexer via Tightly Confined Valley Surface States,” Advanced Science, accepted. [Q1, IF=14.1]
2.X. Zhang, R. Ye, M. Rontgen, M. L. N. Chen*, S.-H. Wei, S. Zhang*, and W. Gao*, “Latent-geometry correspondence: Unravelling hidden symmetry groups with graph theory,” Physical Review Letters, accepted. [Q1, IF=8.1]
3.X. Zhang, S. Li, C. Yu, W. Gao, and M. L. N. Chen*, “Reconfigurable Topological Power Router Based on Interferometric Edge States,” IEEE Transactions on Antennas and Propagation, vol. 74, no. 5, pp. 4985-4989, Feb. 2026. [Q1, IF=4.6]
4.R. Zhou, X. Shi, H. Lin*, Y. Ren, H. Liu, Z. Yu, J. Jin, Z. Lan, and M. L. N. Chen*, “Super-robust telecommunications enabled by topological half-supermodes,” Advanced Science, vol. 13, no. 13, pp. 15157, Jan. 2026. [Q1, IF=14.1]
5.Z. Xu, M. L. N. Chen*, K. Li*, M. Wang, X. Su, and Z. Xu*, “An Autonomous Current Balancing Method for Interleaved DC/DC Converter in Wireless Power Transfer Systems,” IEEE Transactions on Industrial Electronics, vol. 73, no. 3, pp. 3541-3552, Nov. 2025. [Q1, IF=7.5]
6.Y. Guo, M. Lin*, W. Lin, S. Zheng and M. L. N. Chen*, “Microwave Photonic-Based Step Frequency Reflectometry for Electronic Circuit Defect Detection,” IEEE Transactions on Microwave Theory and Techniques, vol. 73, no. 8, pp. 5327-5339, Aug. 2025. [Q1, IF=4.3]
7.C. Huang, Z. Lan, M. L. N. Chen*, and W. E. I. Sha*, “Extraction of power transmission parameters from PT-symmetric waveguides,” Optics Express, vol. 33, no. 2, pp. 3162-3176, Jan. 2025. [Q2, F=3.2]
8.Z. Zhang, Z. Lan, P. Xu, L. Wu, M. L. N. Chen, W. E. I. Sha, Y. Xu, and Y. Qin, “Observation of spatiotemporal dynamics for topological surface state with on-demand dispersion,” Photonics Research, vol. 12, no. 12, pp. 2919-2930, Dec. 2024. [Q1, IF=6.6]
9.X. Zhang, S. Li, Z. Lan, W. Gao*, and M. L. N. Chen*, “Reconfigurable Photonic Valley Filter n Hybrid Topological Heterostructures,” Laser & Photonics Reviews, 2400797, Oct. 2024. [Q1, F=9.8]
10.W. E. I. Sha, Z. Lan, M. L. N. Chen, Y. P. Chen, and S. Sun, “Spin and Orbital Angular Momenta of Electromagnetic Waves: From Classical to Quantum Forms,” IEEE Journal on Multiscale and Multiphysics Computational Techniques, vol. 9, pp. 113-117, Mar. 2024. [Q3, IF=1.8]
11.R. Zhou, M. L. N. Chen*, X. Shi, Y. Ren, Z. Yu. Y. Tian, Y. Liu, and H. Lin*, “Protected Transverse Electric Waves in Topological Dielectric Waveguides,” IEEE Transactions on Antennas and Propagation, vol. 72, no. 2, pp. 2058-2063, Feb. 2024. [Q1, IF=4.6]
12.S. Li, M. L. N. Chen*, Z. Lan, and P. Li*, “Coexistence of large-area topological pseudospin and alley states in a tri-band heterostructure system,” Optics Letters, vol. 48, no. 17, pp. 4693-4696, ep. 2023. [Q2, IF=3.1]
13.Z. Lan, M. L. N. Chen, J. W. You, and W. E. I. Sha, “Large-area quantum-spin-Hall waveguide tates in a three-layer topological photonic crystal heterostructure,” Physical Review A, vol. 107, no. 4, pp. L041501, Apr. 2023. [Q2, IF=2.6]
14.M. L. N. Chen, Y. Bi, H.-C. Chan, Z. Lin, S. Ma, and S. Zhang, “Anomalous electromagnetic unneling in bianisotropic "-μ-zero media,” Physical Review Letters, vol. 129, no. 12, pp. 123901, ep. 2022. [Q1, IF=8.1; Editors’ Suggestion]
15.Z. Lan, M. L. N. Chen, F. Gao, S. Zhang, andW. E. I. Sha, “A brief review of topological photonics n one, two, and three dimensions,” Reviews in Physics, vol. 9, pp. 100076, Aug. 2022.
16.Z. Zhang, Z. Lan, Y. Xie, M. L. N. Chen, W. E. I. Sha, and Y. Xu, “Bound Topological Edge State in the Continuum for All-Dielectric Photonic Crystals,” Physical Review Applied, vol. 16, no. 6, pp. 064036, Dec. 2021. [Q2, IF=3.8]
17.S. S. A. Yuan, J. Wu, M. L. N. Chen, Z. Lan, L. Zhang, S. Sun, Z. Huang, X. Chen, S. Zheng, J. Jiang, X. Zhang, and W. E. I. Sha, “Approaching the Fundamental Limit of Orbital-Angular-Momentum Multiplexing Through a Hologram Metasurface,” Physical Review Applied, vol. 16, no. 6, pp. 064042, Dec. 2021. [Q2, IF=3.8]
18.M. L. N. Chen, L. J. Jiang, S. Zhang, R. Zhao, Z. Lan, and W. E. I. Sha, “Comparative study of ermitian and non-Hermitian topological dielectric photonic crystals,” Physical Review A, vol. 104, o. 3, pp. 033501, Sep. 2021. [Q2, IF=2.6]
19.Y. Zhang, M. L. N. Chen, and L. J. Jiang, “Extraction of the characteristics of vortex beams with partial receiving aperture at arbitrary locations,” Journal of Optics, vol. 23, no. 8, pp. 085601, Jul. 2021. [Q3, IF=2.0]
20.M. L. N. Chen, L. J. Jiang, Z. Lan, and W. E. I. Sha, “Coexistence of pseudospin- and valley-Hall-like edge states in a photonic crystal with C3v symmetry,” Physical Review Research, vol. 2, no. 4, p. 043148, Oct. 2020. [Q1, IF=3.5]
21.M. L. N. Chen, L. J. Jiang, Z. Lan, and W. E. I. Sha, “Local Orbital-Angular-Momentum Dependent Surface States with Topological Protection,” Optics Express, vol. 28, no. 10, pp. 14428-14435, May. 2020. [Q2, IF=3.2]
22.R. Zhao, G. D. Xie, M. L. N. Chen, Z. Lan, Z. Huang, and W. E. I. Sha, “First-Principle Calculation f Chern Number in Gyrotropic Photonic Crystals,” Optics Express, vol. 28, no. 4, pp. 4638-4649, Feb. 2020. [Q2, IF=3.2]
23.M. L. N. Chen, L. J. Jiang, Z. Lan, and W. E. I. Sha, “Pseudospin-Polarized Topological Line efects in Dielectric Photonic Crystals,” IEEE Transactions on Antennas and Propagation, vol. 68, o. 1, pp. 609-613, Jan. 2020. [Q1, IF=4.6]
24.Y. Zhang, M. L. N. Chen, and L. J. Jiang, “Analysis of Electromagnetic Vortex Beams Using odified Dynamic Mode Decomposition in Spatial Angular Domain,” Optics Express, vol. 27, no. 0, pp. 27702-27711, Sep. 2019. [Q2, IF=3.2]
25.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Quasi-Continuous Metasurfaces for Orbital Angular omentum Generation,” IEEE Antennas and Wireless Propagation Letters, vol. 18, no. 3, pp. 77-481, Mar. 2019. [Q2, IF=3.7]
26.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Generation of Orbital Angular Momentum by a oint Defect in Photonic Crystals,” Physical Review Applied, vol. 10, no. 1, pp. 014034, Jul. 2018.[Q2, IF=3.8]
27.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Orbital Angular Momentum Generation and Detection by Geometric-Phase Based Metasurfaces,” Applied Sciences, vol. 8, pp. 362, Mar. 2018. [Q1, F=2.5; Featured Papers]
28.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Detection of Orbital Angular Momentum with etasurface at Microwave Band,” IEEE Antennas and Wireless Propagation Letters, vol. 17, no. 1, p. 110-113, Jan. 2018. [Q2, IF=3.7]
29.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Ultrathin Complementary Metasurface for Orbital ngular Momentum Generation at Microwave Frequencies,” IEEE Transactions on Antennas and Propagation, vol. 65, no. 1, pp. 396-400, Jan. 2017. [Q1, IF=4.6; ESI Highly Cited Paper]
30.M. L. N. Chen, L. J. Jiang, W. E. I. Sha, W. C. H. Choy, and T. Itoh, “Polarization Control by sing Anisotropic 3-D Chiral Structures,” IEEE Transactions on Antennas and Propagation, vol. 64, o. 11, pp. 4687-4694, Nov. 2016. [Q1, IF=4.6]
31.M. L. N. Chen, L. J. Jiang, and W. E. I. Sha, “Artificial Perfect Electric Conductor-Perfect Magnetic Conductor Anisotropic Metasurface for Generating Orbital Angular Momentum of Microwave With Nearly Perfect Conversion Efficiency,” Journal of Applied Physics, vol. 119, no. 6, pp. 064506, Feb. 2016. [Q2, IF=2.7]