林鹏程 副教授 博士 广东省 研究领域: 新能源 研究方向: 离子热氧化还原电池、离子热扩散电池、新能源综合器件 所在单位: 广东工业大学

基本信息

所在单位:
广东工业大学
机构细分:
材料与能源学院
单位类型:
高等院校
职务:
副教授
职称:
副教授
最高学历:
博士
教育经历:
2025年9月 清华大学 访问学者
2019年1月 香港城市大学 访问学者
2016年1月 东北大学 获博士学位
2012年7月 东北大学 获硕士学位
2010年6月 东北大学 获学士学位
工作经历:
2019年1月-今 广东工业大学 副教授
2016年2月-2018年12月 广东工业大学 讲师
专家介绍:
林鹏程,广东省功能软凝聚态物质重点实验室副教授,广东省科技成果转化中心特聘专家,清华大学航天航空学院和香港城市大学MSE访问学者。发表SCI论文72篇,授权发明专利18项,授权实用新型专利8项,美国专利1项,PCT专利1项。主持国家自然科学基金、广东省自然科学基金、广州市重点研发项目、广州市对外科技合作项目、广东省特技特派员项目和企业委托项目等。参与国基重点项目、区域联合项目、面上项目。指导本科生获2023年节能减排国赛一等奖、2024年节能减排国赛一等奖和三等奖、2025年节能减排国赛二等奖和三等奖。指导闫琪、魏崭、余伟泰、刘杏茹、吴红姣、李健、王玲、杜易盟、周千愉获国家奖学金。指导余伟泰、吴红姣、陈佳琪、苏旖倩、王玲获拔尖卓越人才资助。指导赵曦、骆滢滢、殷悦、吴红姣、刘凯、闫琪、陈虹滨、叶圳达为行业工程师。指导苏华、魏崭、陈莹莹、余伟泰、邹丽清、刘杏茹、黄祯、张健阳、乔骏鹏、李健、林诗雅、谢倚琪、秦圣凡和朱泳祺等赴香港、双一流和985等院校深造。

科研能力

研究领域:
新能源
研究方向:
离子热氧化还原电池、离子热扩散电池、新能源综合器件
论文著作:
1 Self-adaptive photovoltaic power generation under day-night large temperature differences enabled by phase change brine gels with high latent heat and high thermal conductivity, Energy, 2026, 344: 139871.
2 Offshore self-powered communication and positioning enabled by efficient conversion of renewable salinity energy into green power utilizing low-cost asymmetric nano-hybrid hydrogel membrane, Applied Energy, 2025, 396: 126269.
3 Self-adaptive thermoelectric conversion under day-night large temperature differences enabled by superior thermal management capacity of phase change brine gels with high latent heat and high thermal conductivity, Energy Conversion and Management, 2026, 351: 121015.
4 Boosting low-temperature thermal management performance and mechanical property of biomass brine gels by host-guest mutual promotion mechanism towards efficient cold energy utilization in biomedical cold chain, Energy, 2025, 335: 137826.
5 Efficient utilization of cold energy enabled by phase change cold storage brine gels with superior thermophysical properties towards biochemical reagent cold chain, Applied Energy, 2024, 371: 123725.
6 Solar-absorbing energy storage materials demonstrating superior solar-thermal conversion and solar-persistent luminescence conversion towards building thermal management and passive illumination, Energy Conversion and Management, 2022, 266: 115804.
7 Thermal management and waste heat recovery of electronics enabled by highly thermoconductive aramid composites with bridge-type 1D/2D liquid-crystalline thermal conduction networks, Energy Conversion and Management, 2023, 276: 116603.
8 Thermal management of electronics and thermoelectric power generation from waste heat enabled by flexible Kevlar@SiC thermal conductive materials with liquid-crystalline orientation, Energy Conversion and Management, 2022, 251: 114957.
9 Clean Water Harvesting and Power Generation by Solar-absorbing Germanium@ k-carrageenan Evaporator Demonstrating Superior Energy Conversion. Journal of Cleaner Production, 2024: 142944.
10 Self-repairing thermal energy storage gels demonstrating superior thermophysical properties and wearability towards personal thermal management in static and dynamic modes, Chemical Engineering Journal, 2023, 457: 141201.
11 Self-healing inorganic hydrated salt gels for personal thermal management in the static and dynamic modes, Chemical Engineering Journal, 2022, 440: 135632.
12 Reduced Graphene Oxide/Cellulose Sodium Aerogel-Supported Eutectic Phase Change Material Gel Demonstrating Superior Energy Conversion and Storage Capacity toward High-Performance Personal Thermal Management, ACS Applied Materials & Interfaces, 2024, 16, 3334-3347.
13 Bioinspired Multiple Stimuli-Responsive Optical Microcapsules Enabled by Microfluidics, ACS Applied Materials & Interfaces, 2020, 12(41): 46788–46796.
14 A portable high-performance self-insulated solar evaporator based on wooden sponge for seawater desalination and wastewater purification, Desalination, 2023, 556: 116549.
15 Robust seawater desalination and sewage purification enabled by the solar-thermal conversion of the Janus-type graphene oxide evaporator, Desalination, 2022, 522:115406.
16 MXene aerogel-based phase change materials toward solar energy conversion, Solar Energy Materials and Solar Cells, 2020, 206: 110229.
17 Narrow-bandgap light-absorbing conjugated polybenzobisthiazole: Massive interfacial synthesis, robust solar-thermal evaporation and thermoelectric power generation, Science China Materials, 2022, 65(9): 2491–2501.
18 Ying Chen, Self-healing sodium acetate trihydrate phase change material gel demonstrating solar energy conversion and storage for personal thermal management under static and dynamic modes, Solar Energy Materials and Solar Cells, 2024, 268: 112754.
19 Thermal energy storage and solar energy utilization enabled by novel composite sodium acetate trihydrate/sodium dihydrogen phosphate dihydrate phase change materials, Solar Energy Materials and Solar Cells, 2022, 247: 111938.
20 Biomass-based phase change material gels demonstrating solar-thermal conversion and thermal energy storage for thermoelectric power generation and personal thermal management, Solar Energy, 2022, 239: 307-318.
21 Efficient solar-thermal conversion and thermal energy storage towards personal thermal management and thermoelectric power generation enabled by massive screen printing of carbon nanotube dopped energy storage gels, Journal of Energy Storage, 2024, 76: 109782.
22 Phase change material gel particles with suitable size and superior thermophysical properties towards highly efficient thermal management of miniature electronic components, Journal of Energy Storage, 2023, 60: 1065.
23 Highly-efficient cold energy storage enabled by brine phase change material gels towards smart cold chain logistics, Journal of Energy Storage, 2022, 52: 104828.
24 Janus Oligomers Demonstrating Full-Spectrum Visible Light Reflection and Tunable Photoluminescence towards Dual-Mode Dynamic Anti-Counterfeiting, Advanced Optical Materials, 2021, 9(5): 2001434. ation and Sewage Purifification, ACS Applied Materials & Interfaces, 2021, 13: 46717−46726.
25 Janus Polypyrrole Nanobelt@Polyvinyl Alcohol Hydrogel Evaporator for Robust Solar-Thermal Seawater Desalination and Sewage Purification[J] ACS Applied Materials & Interfaces, 2021, 13(39): 46717-46726.
26 Massive Fabrication of Flexible, Form-Stable, and Self-Repairing Brine Phase Change Material Gels toward Smart Cold Chain Logistics, ACS Applied Materials & Interfaces, 2023, 15: 17091-17102.
27 Janus-Type Hydroxyapatite-Incorporated Kevlar Aerogel@Kevlar Aerogel Supported Phase-Change Material Gel toward Wearable Personal Thermal Management, ACS Applied Materials & Interfaces, 2022, 14(10): 12617-12629.
发明专利:
1林鹏程,骆滢滢,乔骏鹏,何智锋,刘骏,陈颖. 一种单畴水合无机盐相变材料及其制备方法[P]广东省:ZL202210286634.2, 授权日: 2022-08-26.
2林鹏程,刘凯,盛鑫鑫,陈颖.一种多元杂化无机单壳多温区相变微胶囊及其制备方法[P]广东省:ZL202110937812.9, 授权日: 2022-06-03.
3林鹏程,刘杏茹,黄仲良,张健阳,陈卓玉,何智锋,乔骏鹏. 一种无机水合盐复合相变材料及其制备方法[P] 广东省: ZL202210180662.6, 授权日: 2022-08-19.
4林鹏程,邹丽清,盛鑫鑫,陈颖.一种柔性导热相变凝胶材料及其制备方法与应用[P]广东省:ZL202110936472.8,授权日:2022-08-02.
5林鹏程,殷悦,盛鑫鑫,陈颖.一种光热转换相变储能凝胶复合材料及其制备方法[P]广东省:202110801396.X, 授权日: 2022-08-25.
6林鹏程,陈虹滨,盛鑫鑫,陈颖.一种双温区相变材料及其制备方法[P]广东省:ZL202010887956.3, 授权日: 2021-05-11.
7林鹏程,余伟泰,盛鑫鑫,陈颖. 一种复合相变材料及其制备方法[P]广东省: ZL202010886405.5, 授权日: 2021-07-02.
科研项目:
[1] 国家自然科学基金: 2019-2021,主持
[2] 广东省自然科学基金面上项目: 2025-2027,主持
[3] 广东省自然科学基金面上项目: 2019-2020,主持
[4] 广州市对外科技合作项目:2018-2020,主持
[5] 广州市重点研发计划项目: 2020-2022,主持
[6] 广东省科技特派员项目: 2020-2021,主持
[7] 广东省科技成果转化项目: 2022-2023,主持
[8] 广东工业大学科研启动项目: 2016-2020,主持
[9] 企业委托开发项目: 2019-2021,主持
[10] 国家自然科学基金重点基金: 2025-2029,参与
[11] 国家自然科学基金区域联合基金: 2020-2024,参与
[12] 国家自然科学基金面上项目: 2020-2023,参与
[13] 国防973涉密项目:xxxxxxxxxxxx,参与

项目合作

合作意向:
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