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李富民,西安交通大学物理学院副教授,博士生导师。入选西安交通大学“青年拔尖人才支持计划”。长期从事低维度贵金属基功能材料的开发及其在可再生能源领域的应用研究。近年来以通讯作者在“Adv. Mater.”、“Energy Environ. Sci.”、“Angew. Chem. Int. Ed.”、“Adv. Energy Mater.”、“Adv. Funct. Mater.”等期刊发表学术论文24篇,其中6篇入选ESI高被引论文,辅助培养博士生2名,硕士生8名(指导风格:培养学生信心、鼓励学生探究)。此外,在“Nature”、“Chem. Soc. Rev.”等期刊上合作发表论文40余篇。论文累计被引6100余次,H-index为46,被引频次>100的论文20篇(Google Scholar统计)。主持国家自然科学基金项目1项和中国博士后面上项目1项。获2021年陕西高等学校科学技术奖二等奖(排名第二)和2020年陕西省自然科学优秀学术论文奖二等奖(排名第二)。担任《能源化学》(Journal of Energy Chemistry, IF: 14.0, JCR: Q1)第三届青年编委和《结构化学》(Chinese Journal of Structural Chemistry, IF: 5.9, JCR: Q1)第四届青年编委。

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邮   件:lifumin@xjtu.edu.cn

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Research Fields

  • 燃料电池催化剂的设计、合成及相关催化机理研究
  • 电解水制氢/二氧化碳电还原/硝酸根电还原催化剂的设计、合成及相关机理研究
  • 电催化剂腐蚀/重构行为和机理研究

通讯作者论文列表:

  • 2024
  • Zhong, W.; Hong, Q.-L.; Ai, X.; C.; Zhang, C.; Li, F.*; Li, X.; Chen, Y.*, RhNi bimetallenes with lattice-compressed Rh skin towards ultrastable acidic nitrate electroreduction. Adv. Mater. 2024, 36, 2314351. (IF: 27.4, ESI高被引论文)
  • Huang, L.; Niu, H.; Xia, C.; Li, F.*; Shahid, Z.; Xia, B. Y.*. Integration construction of hybrid electrocatalysts for oxygen reduction. Adv. Mater. 2024, 36, 2404773. (IF: 27.4)
  • Sun, B.; Zhong, W.; Ai, X.; Zhang, C.; Li, F.*; Chen, Y.*, Engineering low-coordination atoms on RhPt bimetallene for 12-electron ethanol electrooxidation. Energy Environ. Sci. 2024, 17, 2219-2227. (IF: 32.4, ESI高被引论文)
  • Fang, W.; Lu, R.; Li, F.*; Wu, D.; Yue, K.; He, C.; Mao, Y.; Guo, W.; You, B.; Song, F.; Yao, Tao.; Wang, Z.*; Xia, B. Y.*, Low-coordination nanocrystalline copper-based catalysts through theory-guided electrochemical restructuring for selective CO2 reduction to ethylene. Angew. Chem. Int. Ed. 2024, 63, e202319936. (IF: 16.1)
  • Hong, Q.-L.; Sun, B.; Ai, X.; Tian, X.-L.; Li, F.*; Chen, Y.*, Au nanocrystals modified holey PtTeAu metallene heteronanostructures for plasmon-enhanced nitrate electroreduction. Adv. Funct. Mater2024, 34, 2310730. (IF: 18.5)
  • Hong, Q.-L.; Zhao, Y.; Ai, X.; Ding, Y.; Li, F.*; Chen, P.; Jin, P.-J.; Chen, Y.*, Ultrathin RhCu bimetallenes for the selective electro-oxidation of glycerol. Chem. Eng. J. 2024, 482, 148960. (IF: 13.3)
  • Miao, B.-Q.; Yuan Z.-H.; Hong, Q.-L.; Ai, X.*; Li, F.*; Chen, P.; Jin, P.; Chen, Y.*, The d-p orbital hybridization engineered RhPb bimetallene for efficient ethanol electrooxidation, Sci. China Chem.‌‌ 2024. DOI: 10.1007/s11426-024-2330-y (IF: 10.4)
  • 2023
  • Miao, B.-Q.; Sun, B.; Wang, T.-J.; Shi, F.; Chen, P.; Jin, P.; Li, D.; Li, F.*; Chen, Y.*, Efficient promotion of ethanol complete electrooxidation by anti-poisoning rhodium-bismuth alloy nanodendrites. Appl. Catal. B-Environ. 2023, 337, 122967. (IF: 20.2)
  • Sun, B.; Jiang, Y.-C.; Hong, Q.-L.; Liu, X.; Li, F.*; Li, D.-S.; Yang, Y.*; Chen, Y.*. Pt-Te alloy nanowires towards formic acid electrooxidation reaction. J. Energy Chem. 2023, 85, 481-489. (IF: 14.0)
  • Xue, Q.; Wang, Z.; Ding, Y.; Li, F.*; Chen, Y*. Chemical functionalized noble metal nanocrystals for electrocatalysis. Chinese J. Catal. 2023, 45, 6-16. (IF: 15.7, ESI高被引论文)
  • Hong, Q.-L.; Miao, B.-Q.; Wang, T.-J.; Li, F.*; Chen, Y.*, Intermetallic PtTe metallene for formic acid oxidation assisted electrocatalytic nitrate reduction. Energy Lab 2023, 1, 220022. 
  • 2022
  • Ge, Z.-X.; Wang, T.-J.; Ding, Y.; Yin, S.; Li, F.*; Chen, P.; Chen, Y.*, Interfacial engineering enhances the electroactivity of frame-like concave RhCu bimetallic nanocubes for nitrate reduction. Adv. Energy Mater. 2022, 12, 2103916. (IF: 24.4, ESI高被引论文)
  • Wang, T.-J.; Fang, W.-S; Liu, Y.-M; Chen, P.*; Li, F.*; Chen, Y.*, Heterostructured Pd/PdO nanowires for selective and efficient CO2 electroreduction to CO. J. Energy Chem. 2022, 70, 407-413. (IF: 14.0, ESI高被引论文)
  • Xue, Q.; Bai, X.-Y.; Zhao, Y.; Li, Y.-N.; Wang, T.-J.; Sun, H.-Y.; Li, F.*; Chen, P.; Jin, P.; Yin, S.-B.; Chen, Y.*, Au core-PtAu alloy shell nanowires for formic acid electrolysis. J. Energy Chem. 2022, 65, 94-102. (IF: 14.0, ESI高被引论文)
  • Jiang, Y.-C.; Ding, Y.; Li, F.*; Yin, S.; Li, D.-S.; Li, X.; Chen, Y.*, Ultrafine Pd@PdPt nanowires with a single-atom alloy shell for efficient formate oxidation. J. Mater. Chem. A 2022, 10, 24701-24707. (IF: 10.7)
  • Sun, B.; Wang, Z.; Yuan, Z.-H.; Ding, Y.; Li, F.*; Zhao, G.-T.; Li, D.-S.; Li, X.-F.; Chen, Y.*, Ultrathin rhodium nanosheet-gold nanowire nanocomposites for alkaline methanol oxidation reaction. Chem. Commun. 2022, 58, 11139-11142. (IF: 4.3)
  • 2018-2021
  • Xue, Q.; Zhao, Y.; Zhu, J.; Ding, Y.; Wang, T.; Sun, H.; Li, F.*; Chen, P.; Jin, P.; Yin, S.; Chen, Y.*, PtRu nanocubes as bifunctional electrocatalysts for ammonia electrolysis. J. Mater. Chem. A 2021, 9, 8444-8451. (IF: 10.7)
  • Sun, H. Y.; Ding, Y.; Yue, Y. Q.; Xue, Q.; Li, F.*; Jiang, J. X.; Chen, P.; Chen, Y.*, Bifunctional palladium hydride nanodendrite electrocatalysts for hydrogen evolution integrated with formate oxidation. ACS Appl. Mater. Interfaces 2021, 13, 13149-13157. (IF: 8.3)
  • Wang, T.-J.; Xu, G.-R.; Sun, H.-Y.; Huang, H.; Li, F.*; Chen, P.; Chen, Y.*, Anodic hydrazine electrooxidation boosted overall water electrolysis by bifunctional porous nickel phosphide nanotubes on nickel foam. Nanoscale 2020, 12, 11526-11535. (IF: 5.8)
  • Zhu, J.-Y.; Chen, S.; Xue, Q.; Li, F.*; Yao, H.-C.; Xu, L.*; Chen, Y.*, Hierarchical porous Rh nanosheets for methanol oxidation reaction. Appl. Catal. B-Environ. 2019, 264, 118520. (IF: 20.2)
  • Wang, T.-J.; Huang, H.; Wu, X.-R.; Yao, H.-C.; Li, F.*; Chen, P.; Jin, P.-J.; Deng, Z.-W.; Chen, Y.*, Self-template synthesis of defect-rich NiO nanotubes as efficient electrocatalysts for methanol oxidation reaction. Nanoscale 2019, 11, 19783-19790. (IF: 5.8)
  • Zhao, Y.; Ding, Y.; Qiao, B.; Zheng, K.; Liu, P.; Li, F.*; Li, S.; Chen, Y.*, Interfacial proton enrichment enhances proton-coupled electrocatalytic reactions. J. Mater. Chem. A 2018, 6, 17771-17777. (IF: 10.7)
  • Xue, Q.; Ding, Y.; Xue, Y.; Li, F.*; Chen, P.; Chen, Y.*, 3D nitrogen-doped graphene aerogels as efficient electrocatalyst for the oxygen reduction reaction. Carbon 2018, 139, 137-144. (IF: 10.5)
  • Xiao, X.; Wang, T.; Bai, J.; Li, F.*; Ma, T.*; Chen, Y.*, Enhancing the selectivity of H2O2 electrogeneration by steric hindrance effect. ACS Appl. Mater. Interfaces 2018, 10, 42534-42541. (IF: 8.3)