魏鹤鸣的个人资料

    学历: 博士研究生

    学位: 博士

    职称: 副教授

    是否硕导:是

    研究方向:光纤传感、微纳光子器件、光电信号处理

    办公地址:上海大学宝山东校区12号楼 B419

    Email: hmwei@shu.edu.cn

魏鹤鸣的个人简介

个人简介:

魏鹤鸣,男,2013.7-2016.10在大连理工大学光电工程与仪器科学学院 攻读博士学位,获光学工程博士学位;2016.11-2019.10 在美国西北大学机械工程系,智能结构与材料中心从事光纤超声传感与3D微纳加工等博士后的研究工作,2019.10-至今 在上海大学通信与信息工程学院从事科研和教学工作,从事光纤传感技术、超声检测以及飞秒激光加工等研究工作。目前在Light: Advanced Manufacturing, Advanced Materials, Photonics Research等国际知名期刊上以第一作者和通信作者发表50余篇文章,获2019年度上海市高校"青年东方学者"项目以及2020年度上海市海外引智计划青年项目。

教育经历:

2016/11-2019/10,美国西北大学,机械工程系,博士后

2014/10-2016/10,美国西北大学,机械工程系,博士联合培养

2013/07-2016/10,大连理工大学,物理与光电工程学院,博士

2010/09-2013/07,大连理工大学,物理与光电工程学院,硕士

2006/09-2010/07,淮阴师范学院,物理系,本科

科研与学术工作经历:

2025/4-2025/6, 比利时蒙斯大学,CSC公派访问学者

2020/12-至今, 上海大学, 通信与信息工程学院, 副教授

2019/10-2020/12, 上海大学, 通信与信息工程学院, 讲师/特聘副研究员

学术荣誉:

2025-至今 IEEE Sensors Reviews期刊 副编辑

2024年度中国国际大学生创新大赛优秀指导教师

2023年度全国光子技术论坛 最佳论文奖

2022-至今 全球前2%顶尖科学家

2020年度上海市海外引智计划青年人才项目

2019年度上海市高校"青年东方学者"

研究领域/科研方向:

光纤多物理量传感器及系统

MEMS光纤传感器

微纳光子器件及3D打印

光纤声/超声传感技术

【欢迎光电、物理、通信、电子信息类优秀学生联系,每年招收本科生1-2名,研究生3-5名】

承担或参加的科研项目:

(11)国家自然科学基金面上项目(No. 62675200)声光耦合增强型原子力光纤探针及先进封装芯片亚表面缺陷原位无损检测方法研究;2027.1-2030.12,主持

(10)企事业单位委托,MEMS光眼压传感器及算法验证,2026.4-2027.3,主持

(9)上海飞机制造有限公司外协项目,光纤激光超声测厚技术研究与验证,2025,主持

(8)上海市自然科学基金面上项目,高灵敏度磁折变微纳波导磁场传感器,2024.10-2027.9,主持

(7)企事业单位委托,高性能光纤XXX传感器,2024-2025,主持

(6)企事业单位委托,光纤波导传输模块,2024.5-2024.10,主持

(5)企事业单位委托,光固化水凝胶引流及监测器械系统小型化,2024.1-2025.12,主持

(4)企事业单位委托,高灵敏光纤微压传感测试表征,2023.11-2024.6,主持

(3)企事业单位委托,光固化水凝胶引流及监测器械测试表征,2022.4-2024.3,主持

(2)国家自然科学基金青年项目(No. 62005153),基于波导微环的高灵敏度光纤端面集成光学超声传感器研究,2021.1-2023.12,主持

(1)上海市自然基金面上项目(No. 20ZR1420300),基于微纳光子技术的高灵敏度Sagnac型磁场传感器研究,2020.7-2023.6,主持

代表性研究成果:

【2026】

[55] C. Jia, K. Sun, Z. Xu, H. Wei*, T. Yang, M. Zhu, H. Zhang, N. Chen*, C. Mou, F. Pang, C. Marques. Two-photon 3D-printed fibre-optic fan-shaped micro-ring resonator for ultrasound detection and imaging, Light: Advanced Manufacturing, 2026.

[54] H. Wei, Y. Gong, S. Li, Y. Shang, S. Liu, Y. Liu, N. Chen*, and F. Pang. Tuning-fork-enabled heterodyne fiber-optic acoustic probing for nanoscale subsurface imaging, Photonics Research, 2026, 14(7): 3227-3234.

[53] Y. Sun, F. Wang, J. Han, G. Qu, Z. Zhang, Y. Wei, C. Yang, Q. Ruan, S. Wang, H. Wei*, C. Huang, J. Guan*, and J. Hu*. All-optical diffractive operators for rapid, computer-free morphological transformations, Nanophotonics, 2026, 15(4): 70031.

[52] 曹旭,张志航,李一航,魏鹤鸣*,陈娜,朱梦实,张亮,庞拂飞,深度学习赋能的MEMS光学微腔压力传感系统, 光学学报, 2026-03-09, 网络首发.

[51] 龚威豪,王辉,李政*,魏鹤鸣*,朱梦实,庞拂飞,基于光纤激光超声的金属薄板测厚技术研究, 光学学报, 2026-02-02, 网络首发.

【2025】

[50] H. Wei, Y. Wei, C. Zhuang, G. He, T. Yang, X. Zhang, F. Pang, T. Wang, S. Krishnaswamy, C. Caucheteur, and X. Hu. Sensitivity-enhanced fiber-optic Fabry-Perot ultrasonic sensor based on direct laser writing of dual-resonant cavity, IEEE Transactions on Instrumentation and Measurement, 2025, 74: 7000706.

[49] H. Wei*, W. Hu, J. Hu, G. He, F. Pang, S. Krishnaswamy*, J. Nedoma, and C. Marques. 3D printed near-infrared high-numerical aperture achromatic metalens, iScience, 2025, 28: 112628.

[48] C. Zhuang#, T. Jin#, J. Zhang, H. Wei*, M. Zhu, L. Zhang, F. Pang, S. Zheng, D. Zhang*, K. Lim, and C. Marques. A MEMS fiber-optic Fabry-Perot accelerometer with spectral-phase demodulation, Optics and Laser Technology, 2025, 191: 113371.

[47] H. Wei, L. Hou, Y. Wei, W. Ding, G. He, R. Yin, D. Ren, F. Pang, C. Caucheteur, X. Hu, and C. Marques. Two-photon 3D printing optical Fabry-Perot microcavity for non-contact pressure detection, Optics and Laser Technology, 2025, 181: 111614.

[46] Y. Zhu, J. Zhou, T. Jin, X. Wu, M. Zhu, L. Zhang, F. Pang, D. Zhang, H. Wei*, S. Zheng, and C. Marques, High-temperature-resistant gas pressure sensor based on an all-silica Fabry–Perot interferometer, Applied Optics, 2025, 64(20): 5688-5697.

[45] Y. Wei, J. Zhang, H. Wei*, C. Jia, F. Pang, S. Zheng, and C. Marques. Bracket-diaphragm coupled Fabry-Perot acoustic sensor for partial discharge detection, IEEE Photonics Technology Letters, 2025, 37(19): 1125-1128.

[44] 马晓明,李念强,高嵩,曹志斌,魏鹤鸣, 面向石油衍生物检测的等离激元碳化硅纳米环折射率传感器设计, 光学学报, 2025-11-18,网络首发

[43] 庄昌全,魏鹤鸣*,金涛,吴霄,朱梦实,庞拂飞,张登伟,宽动态响应硅基微机电系统光纤法布里⁃珀罗振动传感器, 2025, 45(16): 1628003.

[42] 丁武成,魏鹤鸣*,韦妍,朱梦实,张亮,庞拂飞,基于氮化硅膜片的光纤法布里-珀罗声波传感器, 光学学报, 2025, 45(2): 0206008.

【2024】

[41] R. Yin#, Y. Yang#, L. Hou, H. Wei*, H. Zhang, and W. Zhang. Two-photon 3D printed fiber-optic Fabry-Perot probe for triaxial contact force detection of guidewire tips, Photonics Research, 2024, 12(11): 2474-2486.

[40] W. Wu, B. Sun, S. Chen, W. Gong, and H. Wei*, Membrane-based optical fiber Bragg grating pressure sensor for health monitoring of pile foundations, Applied Optics, 2024, 63(12): 3039-3045.

[39] H. Wei, C. Zhuang, J. Che, D. Zhang, M. Zhu, F. Pang, C. Caucheteur, X. Hu, J. Nedoma, R. Martinez, and C. Marques. Highly stabilized fiber Bragg grating accelerometer based on cross-type diaphragm, Optics Express, 2024, 32(12): 21447-21458.

[38] H. Wei, Z. Wu, Y. Wei, C. Wang, H. Zhang, F. Pang, C. Marques, C. Caucheteur, and X. Hu. 3D printed Fabry-Perot acoustic probe with a glass horn tube, Optics & Laser Technology, 2024, 168: 109977.

[37] H. Wei, W. Hu, and F. Pang. 高性能近红外聚合物超透镜的逆向设计, 光学学报, 2024, 44(8): 0823001.

【2023】

[36] H. Wei, K. Sun, Y. Wei, M. Zhu, H. Zhang, F. Pang, T. Wang, and S Krishnaswamy. Two-photon 3D printing diaphragm-integrated ring waveguide coupler for ultrasound detection, Optics Letters, 2023, 48(16): 4412-4415.

[35] Y. Wei, K. Sun, H. Wei*, M. Zhu, F. Pang, C. Marques, and X. Hu. A corrugated diaphragm-based Fabry-Perot ultrasonic sensor by two-photon 3D printing, IEEE Photonics Technology Letters, 2023, 35(20): 1078-1081.

[34] B. Bai#, H. Wei#, X. Yang, T. Gan, D. Mengu, M. Jarrahi, and A. Ozcan. Data Class‐Specific All‐Optical Transformations and Encryption, Advanced Materials, 2023, 35(31): 2212091.

[33] H. Wei, L. Han, R. Yin, T. Yang, Y. Liu, C. Mou, F. Pang, and T. Wang. Micro-3D printed Concanavalin A hydrogel based photonic devices for high-sensitivity glucose sensing, Sensors and Actuators B: Chemical, 2023, 386: 133707.

[32] H. Wei, Z. Wu, K. Sun, H. Zhang, C. Wang, K. Wang, T. Yang, F. Pang, X. Zhang, T. Wang, and S. Krishnaswamy. Two-photon 3D printed spring-based Fabry-Perot cavity resonators for acoustic wave detection and imaging, Photonics Research, 2023, 11(5): 780-786.

【2022】

[31] Y. Sun, Z. Dong, Z. Ding, N. Wang, L. Sun, H. Wei*, G.P. Wang*, Carbon Nanocoils and Polyvinyl Alcohol Composite Films for Fiber-Optic Fabry–Perot Acoustic Sensors, Coating, 2022, 12(10): 1599.

[30] H. Wei*, Z. Gong, W. Wu, J. Che, L. Zhang, F. Pang, and T. Wang, Broadband Fiber-Optic Acoustic Sensors, Journal of Lightwave Technology, 2022.

【2021】

[29] D. Zhang, Z. Zhang, H. Wei*, and S. krishnaswamy. Highly sensitive Mach–Zehnder interferometric micromagnetic field sensor based on 3D printing technology, Applied Optics, 2021, 60(27): 8493-8498.

[28] Dengwei Zhang, Zhihang Zhang, H. Wei*, Jianrong Qiu, and S. Krishnaswamy. Direct laser writing spiral Sagnac waveguide for Ultrahigh Magnetic Field Sensing. Photonics Research, 2021. (IF: 7.080)

[27] Wisnu Hadibrata#, Heeso Noh#, H. Wei#, S. Krishnaswamy, and Koray Aydin. Compact, High‐resolution Inverse‐Designed On‐Chip Spectrometer Based on Tailored Disorder Modes. Laser & Photonics Review, 2021. (IF: 13.138)

[26] W. Hadibrata#, H Wei#, S. Krishnaswamy and K. Aydin, Inverse design and 3D printing of a metalens on an optical fiber tip for direct laser lithography, Nano Letters, 2021, 21(6): 2422-2428.

[25] Z. Gong, J. Che, H. Wei*, and S. krishnaswamy. Large dynamic-range fiber Bragg grating sensor system for acoustic emission detection, Applied Optics, 2021, 60(19): 5547-5552.

[24] 马晓明,魏鹤鸣,范书振,李永富,刘兆军,赵显,方家熊,具有定向出射的回音壁模式聚合物卵形微腔,光学学报, 2021, 41(5): 0514001.

[23] 魏鹤鸣*,龚哲,车嘉炜,庞拂飞**,光纤超声安全监测研究进展,激光与光电子学进展, 2021, 58(13): 1306018.

【2020】

[22] Z. Lin#, L. Novelino#, H Wei#, N. Alderete#, G. Paulino, D. Horacio, and S Krishnaswamy, Folding at the Microscale: Enabling Multifunctional 3D Origami-Architected Metamaterials, Small, 2020, 16(35): 2002229.

[21] D. Wei, H. Wei*, and S. Krishnaswamy. Highly Sensitive Magnetic Field Microsensor Based on Direct Laser Writing of Fiber-tip Optofluidic Fabry–Perot Cavity. APL Photonics, 2020, 5(7): 076112. (Editor's Pick)

[20] X. Ma, H. Wei*, S Fan, A. Amrithanath, J. Fang, and S Krishnaswamy, Multi-wavelength microresonator based on notched-elliptical polymer microdisks with unidirectional emission, Optics Express, 2020, 28(16): 23928-23935.

[19] H. Wei, and S. krishnaswamy. Three-dimensional-printed Fabry–Perot interferometer on an optical fiber tip for a gas pressure sensor, Applied Optics, 2020, 59(7): 2173-2178.

[18] H. Wei, and S. Krishnaswamy. Adaptive fiber-ring lasers based on an optical fiber Fabry–Perot cavity for high-frequency dynamic strain sensing, Applied Optics, 2020, 59(2): 530-535.

【2014-2019】

[17] M. Chen, Y. Zhao*, H. Wei*, and S. Krishnaswamy. Cascaded FPI/LPFG interferometer for high-sensitivity simultaneous measurement of strain and temperature. Accepted in Optical Fiber Technology, 2019. (SCI, IF=1.824)

[16] D. Wei, H. Wei*, and S. Krishnaswamy. Optofluidic refractive index sensors based on direct laser writing polymer Mach-Zehnder interferometer on a fiber tip. IEEE Photonics Technology Letters, 2019. (SCI, IF=2.553) (DOI: 10.1109/LPT.2019.2943897)

[15] M. Chen, H. Wei*, Y. Zhao*, X. Lei, and S. Krishnaswamy. Temperature insensitive air-cavity Fabry-Perot gas pressure sensor based on core-offset fusion of hollow-core fibers. Sensors and Actuators A-Physics, 2019, 298: 111589.

[14] H. Wei#, F. Callewaert#, W. Hadibrata, V. Velev, P. Kumar, S. Krishnaswamy, and K. Aydin. Two-photon direct laser writing of inverse-designed near infrared polarization beam splitter [J]. Advanced Optical Materials, 2019, 1900513.

[13] H. Wei and S. Krishnaswamy. Direct laser writing of phase-shifted Bragg grating waveguide for ultrasound detection. Optics Letters, 2019, 44(15): 3817-3820.

[12] H. Wei, C. L. Tan, A. Amrithanath, and S. Krishnaswamy. Functionalized fiber-optic long-period grating with reduced cladding size based on refractive index sensing [J]. Optical Engineering, 2019, 58(3): 037105.

[11] H. Wei, A. Amrithanath, and S. Krishnaswamy. 3D printing of micro-optic spiral phase plates for generation of optical vortex beam [J]. IEEE Photonics Technology Letters, 2019, 31(8): 599-602.

[10] H. Wei, K. Liao, X. Zhao, X. Kong, P. Zhang, C. Sun. Low coherent fiber-optic interferometry for monitoring the inner-corrosion induced expansion of prestressed concrete cylinder pipes [J]. Structural Health Monitoring, 2019, 18(5-6): 1862-1873.

[9] H. Wei, A. Amrithanath, and S. Krishnaswamy. Three-dimensional printed polymer waveguides for whispering gallery mode sensors [J]. IEEE Photonics Technology Letters, 2018, 30(5): 451-454.

[8] H. Wei and S. Krishnaswamy. Polymer micro-ring resonator integrated with a fiber ring laser for ultrasound detection [J]. Optics Letters, 2017, 42(13): 2655-2658.

[7] H. Wei and S. Krishnaswamy. Comparative Assessment of Erbium Fiber Ring Lasers and Reflective SOA Linear Lasers for Fiber-Bragg Grating Dynamic Strain Sensing [J]. Applied Optics, 2017, 56(13): 3867-3874.

[6] H. Wei and S. Krishnaswamy. Direct Laser Writing Polymer Micro-resonators for refractive index sensors [J]. IEEE Photonics Technology Letters, 2016, 28(24): 2819-2822.

[5] H. Wei, C. Tao, Y. Zhu, and S. Krishnaswamy. Fiber Bragg grating dynamic strain sensor using an adaptive reflective semiconductor optical amplifier source [J]. Applied Optics, 2016, 55(10): 2752-2759.

[4] H. Wei, Y. Zhu, and S. Krishnaswamy. Optofluidic Photonic Crystal Fiber Coupler for Measuring the Refractive Index of Liquids [J]. IEEE Photonics Technology Letters, 2016, 28(1): 103-106.

[3] H. Wei, Y. Zhu Y, and S. Krishnaswamy. Numerical analysis of waveguide coupling between photonic crystal fiber and single-mode fiber [J]. IEEE Photonics Technology Letters, 2015, 27(20): 2142-2145.

[2] H. Wei, X. Zhao, D. Li, P. Zhang, and C. Sun. Corrosion monitoring of rock bolt by using a low coherent fiber-optic interferometry [J]. Optics & Laser Technology, 2015, 67: 137-142.

[1] H. Wei, X. Zhao, X. Kong, Y. Cui, P. Zhang, and C. Sun. The Performance Analysis of Distributed Brillouin Corrosion Sensors for Steel Reinforced Concrete Structures. Sensors, 2014, 14(1): 431-442.

【部分授权专利】

[9] 张登伟; 金涛; 魏鹤鸣; 张智航; 杨建华; 缪立军; 韩大鹏. 一种高分辨率的FPI光谱解调方法,2024-11-29,中国发明专利,ZL2024117321639

[8] 魏鹤鸣; 孙可璇; 韦妍; 王陈; 张小贝; 庞拂飞; 王廷云. 一种基于膜片振动耦合型波导微环超声传感器,2022-12-15,中国发明专利

[7] D. Ren, F. Wang, K. Wang, R. Yin, H. Wei, H. Zhang, Intraocular Pressure Sensor, 2022-10-21, 美国发明专利,US12,257,079 B2

[6] 王陈; 王伟康; 魏鹤鸣. 一种基于相位评价函数的数字全息重建距离优化方法,2022-07-13,中国发明专利,ZL2022108263033

[5] 王陈; 孟宪昱; 魏鹤鸣. 复杂微结构表面台阶高度或沟槽深度不确定度快速评估方法,2022-06-30,中国发明专利,ZL202210767011.7

[4] 魏鹤鸣; 吴彰理; 方清华; 张保; 庞拂飞; 王廷云. 一种光纤谐振式法布里珀罗超声传感器件,2022-06-01,中国发明专利,ZL202210619118.7

[3] S. Krishnaswamy, H. Wei, W. Hadibrata, K. Aydin, Systems and Methods for Direct Laser Writing, 2021-11-01,美国发明专利,US12,282,261 B2

[2] 魏鹤鸣; 吴彰理; 方清华; 张保; 庞拂飞; 王廷云. 基于微流控型双光子激光直写技术的超长三维纳米光纤制备系统及方法,2021-04-06,中国发明专利,ZL202110368228.6

[1] 魏鹤鸣; 吴彰理; 张保; 韩龙; 庞拂飞; 王廷云. 一种基于光纤端超透镜的笔光刻系统和制备方法,2021-03-25,中国发明专利,ZL202110321468.0

【部分邀请报告】

[6] H. Wei, Deep learning-empowered optical microcavity pressure sensing system, The 17th International Conference on lnformation Optics and Photonics, Nanjing, 2026-07-25.

[5] 魏鹤鸣,新型光纤端集成声/超声传感器,2024年中国光纤传感大会,重庆,2024-09-20.

[4] 魏鹤鸣,微纳光子器件逆向设计及双光子聚合制备,第八届亚太光学制造会议暨第三届国际先进光学制造青年科学家会议,2023-08-04.

[3] H. Wei, 3D printing photonic waveguide and its applications, The 5th international workshop on Photonic Fibers and Applications, Sydney, 2023-05-31.

[2] 魏鹤鸣,耦合增强型光纤微纳超声传感器设计及制备,2023年中国光纤传感大会,合肥,2023-08-11.

[1] H. Wei, Two-Photon 3D Printing Micro and Nano Devices for Photonic Sensing Applications, 10th Applied Optics and Photonics China, Beijing, 2021.