王宁

教授

wangning@ustb.edu.cn

教授 | 博士生导师
邮箱:wangning@ustb.edu.cn
办公地点:管庄校区十层
本科生课程:柔性电子传感,现代绿色能源技术


一、教育经历

北京航空航天大学,材料科学与工程学院,2005-2008,博士


二、研究方向

课题组深耕仿生智能材料、自驱动器件与新能源传感交叉前沿,主要研究方向包括:

  1. 摩擦纳米发电机(TENG):聚焦仿生结构设计、新型功能改性与器件性能优化,开发轻量化、高适配、高稳定性的自驱动能量收集与智能传感系统,适配穿戴电子、工业监测、环境感知等多场景应用。

  2. 多功能柔性智能材料:主攻导电仿生水凝胶、柔性功能薄膜、智能响应复合材料,实现力学适配、温湿调控、抗菌防护、导电传感一体化,构筑高性能可穿戴电子皮肤与柔性器件体系。

  3. 自驱动智能传感与监测系统:依托TENG与柔性材料优势,搭建无外接电源、低功耗、高适配的智能传感平台,应用于人体健康监测、运动感知、工业设备故障预警、海洋环境探测等场景。

  4. 新能源储能与电催化:围绕高效能量转换与存储技术,开展电催化析氢、新型储能电极设计、镁离子电池高性能负极材料开发等研究。


三、科研业绩

承担国家自然科学基金面上项目、教育部联合研发项目,参与多项国家重点研发计划。以通讯作者在Adv. Mater.、Energy Environ. Sci.、Adv. Funct. Mater.、Adv. Energy Mater.、Nano Energy等期刊发表SCI论文140余篇,总引用9000余次,H指数58;已授权中国发明专利多项。

四、近三年代表作(2024-2026)

1. 顶级综合材料/能源旗舰期刊

[1] Bioinspired Janus Spider-Web Nanofibrous Membranes Integrating Triboelectric Energy Harvesting, Adaptive Thermo-Moisture Regulation, and Bactericidal Activity for Multifunctional Wearables. Adv. Mater., 2026.

[2] Reconciling the Stability-Degradability Paradox in Triboelectronics via Bond-Level Heterogeneous Dynamic Networks. Adv. Funct. Mater., 2026.

[3] Synergistic, Biomass-Enhanced Hydrogels for Sustainable, All-in-One Sensing and Energy-Autonomous Bioelectronics. Adv. Funct. Mater., 2026.

[4] Hydrogel-Based Triboelectric Nanogenerators: Current Progress and Future Perspectives. Adv. Funct. Mater., 2025.

2. 纳米能源与器件领域(Nano Energy / Small)

[5] Cl–-selective hybrid hydrogel for all-climate self-powered integrated electronics. Nano Energy, 2026.

[6] Lotus leaf-inspired triboelectric sensor for detecting seismic transverse wave. Nano Energy, 2025.

[7] NdFeB-based magnetic triboelectric nanogenerator for enhanced bioenergy harvesting and tactile perception. Nano Energy, 2024.

[8] Triboelectrically active hydrogel drives self-charging zinc-ion battery and human motion sensing. Nano Energy, 2024.

[9] E-perlite@Graphene-Based Thermal Isolation Triboelectric Nanogenerator for Abnormal Engine Vibration Monitoring. Small, 2025.

[10] Fiber-Reinforced Composites for High-Performance Triboelectric Nanogenerators: Materials Design, Manufacturing Innovations. Small, 2025.

[11] Triboelectric Nanogenerator Drives Electrochemical Water Splitting for Hydrogen Production. Small, 2025.

3. 化工、传感与交叉应用(CEJ / ACS Sens. / Anal. Chem.)

[12] Multifunctional Janus carbon cloth with triboelectric energy harvesting, smart thermo-electro-wetting regulation, and sensing for on-skin electronics. Chem. Eng. J., 2026.

[13] Molecularly engineered, 1300 °C-stable aerogel with integrated flame retardancy, EMI shielding, and self-powered sensing. Chem. Eng. J., 2025.

[14] Multifunctional ionic hydrogels with biomimetic stability: Synergistic design and versatile self-powered sensing applications. Chem. Eng. J., 2025.

[15] Triboelectrically active and wettability-switchable magnetic textile for self-powered intelligent marine conservation. Chem. Eng. J., 2024.

[16] Mussel-inspired ionic hydrogel for tactile perception: Toward versatility, robustness and sustainability. Chem. Eng. J., 2024.

[17] Robust conductive hydrogel advances self-powered intelligent sports monitoring and fair judging. Chem. Eng. J., 2024.

[18] Material-Structure Codesign in Triboelectric Sensors: A Body-Region-Specific Roadmap for Human Motion Monitoring and Healthcare. ACS Sens., 2026.

[19] Convergence of Multimodal Biosensors and Microfluidics in Point-of-Care Diagnostics. Anal. Chem., 2026.

4. 储能、电催化与理论计算

[20] First-Principles and Machine-Learning Guided Identification of FeB4 and MnB4 as High-Capacity Anodes for Magnesium-Ion Batteries. Mater. Today Phys., 2026.

[21] Review of single-atom electrocatalysts for hydrogen and oxygen evolution reactions from water-splitting. Fuel, 2025.

[22] Carbon fibre reinforced triboelectric nanogenerator for self-powered sporting events monitoring. Nano Energy, 2024.

[23] B4C/PVDF-based triboelectric nanogenerator: Achieving high wear-resistance and thermal conductivity. Tribol. Int., 2024.

五、课题组文化

倡导“物理机制—材料设计—器件集成—场景验证”的闭环科研范式,追求系统性、可延续的高质量研究。团队氛围轻松开放,欢迎有志于高水平科研的同学联系交流。

 



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