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个人信息
Personal Information
  • 教师姓名: 王曙东
  • 性别: 男
  • 职称: 副教授
  • 博士生导师: 是
  • 硕士生导师: 是
  • 学历: 博士研究生毕业
  • 学位: 博士
  • 所在单位: 电气工程学院
  • 电子邮箱:
  • 办公地点: 创新港校区3号巨构4215
  • 毕业院校: 西安交通大学、香港城市大学
  • 学科: 电气工程

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研究方向

1. 基于微机电系统(MEMS)的光声光谱气体传感技术

2. 电力设备专用MEMS传感芯片开发与集成技术

3. 电力设备状态监测与故障诊断技术


招生情况

每年招收博士生1-2名,硕士生2-3名。

欢迎对MEMS传感器/执行器及其系统集成有兴趣或有相关背景的同学报考!

欢迎对科技创业有兴趣的同学报考!


教育/工作经历

2025至今       副教授,西安交通大学,电气工程学院

2021-2025     助理教授,西安交通大学,电气工程学院

2018-2021     博士,香港城市大学,生物医学工程系

2015-2021     博士,西安交通大学,仪器科学与技术

2010-2014     本科,西安交通大学,测控技术与仪器

科研项目
  1. 国家自然科学基金青年项目,项目负责人,近场光声激励下硅微谐振增强光声检测机理研究

  2. 国家重点研发计划项目子课题,项目负责人,基于有限测量的海上风电并网系统及关键设备状态全景感知技术

  3. 陕西省重点研发计划关键核心技术攻关项目,校方负责人,硅基光电子芯片的光-机协同异质集成工艺研究及系统级传感验证

  4. 陕西省重点产业链(群)项目,校方负责人,高精度MEMS光声光谱气体传感器研发

  5. 陕西省重点研发专项,项目负责人,基于智能传感技术的无人驾驶水面船舶

  6. 浙江省揭榜挂帅项目,校方负责人,面向配网设备的强电磁脉冲试验关键技术研究

  7. 深圳市科技重大专项,校方负责人,全集成式MEMS光声光谱气体传感器

  8. 成都市科技项目,校方负责人,融合特征气体感知的新一代动车组烟火报警系统研究

  9. 中央高校基本科研业务费,项目负责人,基于光声光谱技术的集成化碳监测气体传感研究

  10. 国家重点实验室中青年基础研究创新基金,项目负责人,面向电力设备的光声光谱气体敏感元件研究

  11. 中国南方电网联合研究院专项子课题,项目负责人,微气流换能元件关键技术研究

  12. 国家电网技术委托项目,项目负责人,高灵敏传声器的定频增强封装技术研究

学术论文

[23] Wang, S., Zhi, W., Li, Z., Hu, Y., Dou, W., Gao, Y., Huangfu, Y., Lu, H., Li, Y. (2026). A MEMS Pd-Ni Hydrogen Sensor with Uniform Closed-Loop Temperature Control for Sub-ppm Detection. IEEE Transactions on Instrumentation and Measurement.

[22] Wang, S., Dou, W., Wang, J., Huang, L., & Li, Y. (2026). 面向大型充油电力设备的浸入式油中溶解气体在线监测系统. Gaodianya Jishu/High Voltage Engineering, 52(1), 297-304.

[21] Dou, W., Sun, X., Gao, Y., Wang, S., Tao, K., & Li, Y. (2026). In Situ Oil–Gas Separator Enabled Carrier-Free Photoacoustic Sensing of Acetylene. Sensors, 26(3), 946.

[20] Wang, X., Wang, H., Gao, H., Luo, Z., Wang, S., Hu, C., ... & Li, Y. (2026). A Self-Powered Wireless Deformation Sensor System for Monitoring the Expansion Joints of Gas Insulated Switchgear. IEEE Transactions on Industrial Electronics.

[19] Zhang, Q., Wang, Z., Dou, W., Wang, S., Zhou, D., Jiang, S., ... & Li, Y. (2025). A wideband electromagnetic vibration energy harvester with coupled resonance and compact structural design. Sensors and Actuators A: Physical, 117093.

[18] Zhang, Q., Wang, Z., Zhou, C., Wang, S., Zhou, D., Jiang, S., ... & Li, Y. (2025). A packaging scheme enabling resonant frequency tuning and magnetic shielding for electromagnetic vibration energy harvesters toward industrial applications. IEEE Transactions on Instrumentation and Measurement, 74, 1-10.

[17] Wang, S., He, Y., Wang, B., & Li, Y. (2025). Design and fabrication of a three-dimensional folded MEMS infrared emitter for photoacoustic spectroscopy gas sensor. AIP Advances, 15(7).

[16] Hu, C., Wang, X., Wang, Z., Wang, S., Liu, Y., & Li, Y. (2024). Electromagnetic vibrational energy harvester with targeted frequency-tuning capability based on magnetic levitation. Nanotechnology and Precision Engineering, 7(4).

[15] Wang, Z., Wang, X., Zhang, Q., Dou, W., Gao, Y., Wang, S., & Li, Y. (2024). A batch-fabricated high-density flexible coil enabled by low-temperature bonding technique. Sensors and Actuators A: Physical, 380, 116060.

[14] Guan, T., Deng, S., Wang, S., Du, H., Shu, M., & Li, Y. (2024). A Skin Tension Controller for Chronic Skin Wound Enabled by Flexible Strain Gauges. IEEE Sensors Letters, 8(10), 1-4.

[13] Wang, S., Wang, B., Hua, M., He, Y., Zhu, P., Lu, H., & Li, Y. (2024). Sensitivity enhancement of a miniaturized nonresonant photoacoustic spectroscopy CO 2 sensor. IEEE Transactions on Instrumentation and Measurement, 74, 1-9.

[12] Wang, S., Hua, M., Wang, B., He, Y., Zhu, P., & Li, Y. (2024). Design and Implementation of a Miniaturized Photoacoustic Spectroscopy CO Sensor. IEEE Transactions on Instrumentation and Measurement, 73, 1-9.

[11] Wang, S., Xie, X., Lu, B., Jin, J., Chen, X., & Li, Y. (2023). A portable industrial acoustic detection system with multiband resonant amplification. IEEE Transactions on Instrumentation and Measurement, 72, 1-9.

[10] Wang, S., Wei, X., Lu, H., Ren, Z., Jiang, Z., Ren, J., ... & Shen, Y. (2021). Robot-aided fN·m torque sensing within an ultrawide dynamic range. Microsystems & Nanoengineering, 7(1), 2.

[9] Ding, Y., Ren, Z., Wang, S., Jing, W., Jiang, Z., & Wei, X. (2021). A high-resolution resonant torque sensor based on MEMS quartz resonator. Sensors and Actuators A: Physical, 320, 112579.

[8] Wang, S., Zhu, W., Shen, Y., Ren, J., Gu, H., & Wei, X. (2020). Temperature compensation for MEMS resonant accelerometer based on genetic algorithm optimized backpropagation neural network. Sensors and Actuators A: Physical, 316, 112393.

[7] Xu, L., Wang, S., Jiang, Z., & Wei, X. (2020). Programmable synchronization enhanced MEMS resonant accelerometer. Microsystems & nanoengineering, 6(1), 63.

[6] Wang, S., Zhu, W., Shen, Y., Ren, J., & Wei, X. (2020, March). In-plane dual-axis mems resonant accelerometer with a uniform sensitivity. In 2020 IEEE International Symposium on Inertial Sensors and Systems (INERTIAL) (pp. 1-4). IEEE.

[5] Wang, S., Pu, D., Huan, R., Jiang, Z., Shen, Y., & Wei, X. (2019, January). A MEMS accelerometer based on synchronizing DETF oscillators. In 2019 IEEE 32nd International Conference on Micro Electro Mechanical Systems (MEMS) (pp. 660-663). IEEE.

[4] Wang, S., Wei, X., Zhao, Y., Jiang, Z., & Shen, Y. (2018). A MEMS resonant accelerometer for low-frequency vibration detection. Sensors and Actuators A: Physical, 283, 151-158.

[3] Wang, S., Wei, X., Weng, Y., Zhao, Y., & Jiang, Z. (2018). A novel single-axis MEMS tilt sensor with a high sensitivity in the measurement range from 0 to 360. Sensors, 18(2), 346.

[2] Weng, Y., Wang, S., Zhang, H., Gu, H., & Wei, X. (2017). A high resolution tilt measurement system based on multi-accelerometers. Measurement, 109, 215-222.

[1] Wang, S., Ren, J., Zhang, T., Weng, Y., Jiang, Z., & Wei, X. (2016, October). A MEMS resonant tilt sensor with high sensitivity maintained in the whole 360° measurement range. In 2016 IEEE SENSORS (pp. 1-3). IEEE.