唐浩林

唐浩林

唐浩林,男,1981年2月出生,2007年6月畢業於武漢理工大學材料複合新技術國家重點實驗室,獲博士學位。2007年7月留校工作,2008年3月特聘為副教授,2011年9月破格晉升為武漢理工大學材料複合新技術國家重點實驗室教授,後被增選為武漢理工大學材料科學與工程學院博士生導師,入選2017年國家人才推進計畫 “中青年科技創新領軍人才”。

基本介紹

  • 中文名:唐浩林
  • 國籍:中國
  • 民族:漢族
  • 出生地:安徽
  • 出生日期:1981年2月
  • 畢業院校:武漢理工大學
  • 學位/學歷:博士
  • 職業:科研工作者
  • 專業方向:新能源材料與器件
  • 職務:博士生導師
  • 主要成就:主持863課題4項、國家自然科學基金3項
  • 發表論文數量:74篇(截至2019年7月) 
  • 職稱:武漢理工大學材料複合新技術國家重點實驗室教授
主要經歷,教育經歷,工作經歷,主要成就,所獲榮譽,主要學術成果,

主要經歷

教育經歷

1997.09-2001.06 武漢理工大學材料學院套用化學系,獲學士學位
2004.09-2007.06 武漢理工大學材料複合新技術國家重點實驗室,獲博士學位

工作經歷

2007.12-2008.12 新加坡南洋理工大學,Research Fellow
2008.02-2011.08 武漢理工大學材料複合新技術國家重點實驗室,副教授
2011.09- 武漢理工大學材料複合新技術國家重點實驗室,教授

主要成就

2011年入選“武漢市晨光計畫”,2012年入選教育部“新世紀人才支持計畫”,2014年獲湖北省“傑出青年基金”資助、第十四屆“霍英東青年教師獎”,2016年獲批為“湖北省創新戰略團隊”帶頭人,2018年入選國家“中青年科技創新領軍人才”並作為“創新人才推進計畫”對象。社會兼職有中國太陽能協會會員、美國電化學協會會員,圍繞燃料電池、鋰離子電池及其隔膜關鍵材料,主持863課題4項、國家自然科學基金3項、其它省部級項目8項,在Adv. Mater., Adv. Energy Mater., Adv. Funct. Mater., Nano Energy等期刊發表SCI論文150餘篇,開發的複合離子交換膜及其膜電極、鋰離子電池三層共擠隔膜已投入產業套用。

所獲榮譽

2024年6月24日,由唐浩林等完成的項目《低鉑、高效燃料電池膜電極組件工程化成套製備技術及套用》榮獲2023年度國家技術發明獎二等獎。

主要學術成果

近年來作為第一作者或通信作者的代表性論文
  1. Cai S, Rui W, Yourey W, et al. An efficient bifunctional electrocatalyst derived from layer-by-layer self-assembly of a three-dimensional porous Co-N-C@graphene[J]. Science Bulletin, 2019, 64(14), 968-975.
  2. Meng Z, Cai S, Rui W, et al. Bimetallic-organic framework-derived hierarchically porous Co-Zn-N-C as efficient catalyst for acidic oxygen reduction reaction[J]. Applied Catalysis B: Environmental, 2019, 244, 120-127.
  3. Qu D, You X, Feng X, et al. Lithium ion supercapacitor composed by Si-based anode and hierarchal porous carbon cathode with super long cycle life[J]. Applied Surface Science, 2019, 463, 879-888.
  4. Xue S, Deng W, Yang F, et al. Hexapod PtRuCu Nanocrystalline Alloy for Highly Efficient and Stable Methanol Oxidation[J]. ACS Catalysis, 2018, 8(8), 7578-7584.
  5. Li H, Xie Q, Wang R, et al. Self-assembled 3DOM macro-/mesoporous TiO2, photoanode for dye-sensitized solar cells[J]. Applied Surface Science, 2018, 439, 1026-1033.
  6. Wang R, Cao J, Cai S, et al. MOF@Cellulose Derived Co–N–C Nanowire Network as an Advanced Reversible Oxygen Electrocatalyst for Rechargeable Zinc–Air Batteries[J]. ACS Applied Energy Materials, 2018, 1(3), 1060-1068.
  7. Amiinu I S, Liu X, Pu Z, et al. From 3D ZIF Nanocrystals to Co-Nx/C Nanorod Array Electrocatalysts for ORR, OER and Zn-air Batteries[J]. Advanced Functional Materials, 2018, 28(5), 1704638.
  8. Jiang Y, Zhang Y, Yan X, et al. A sustainable route from fly ash to silicon nanorods for high performance lithium ion batteries[J]. Chemical Engineering Journal, 2017, 330, 1052-1059.
  9. Wang R, Cai S, Yan Y, et al. A novel high-performance electrode architecture for supercapacitors: Fe2O3 nanocube and carbon nanotube functionalized carbon[J]. Journal of Materials Chemistry A, 2017, 5(43). 22648-22653.
  10. Cai S, Meng Z, Tang H, et al. 3D Co-N-doped Hollow Carbon Spheres as Excellent Bifunctional Electrocatalysts for Oxygen Reduction Reaction and Oxygen Evolution Reaction[J]. Applied Catalysis B Environmental, 2017, 217. 477-484.
  11. Yan Y. Tang H, Wu F, et al. Facile synthesis of Fe2O3@graphite nanoparticle composite as the anode for Lithium ion batteries with high cyclic stability[J]. Electrochimica Acta, 2017, 253, 104-113.
  12. Zhu Z, Yan X, Tang H, et al. Protic ionic liquid modified electrocatalyst enables robust anode under cell reversal condition[J]. Journal of Power Sources, 2017, 351, 138-144.
  13. He D, Tang H, Kou Z, et al. Engineered Graphene Materials: Synthesis and Applications for Polymer Electrolyte Membrane Fuel Cells[J]. Advanced Materials, 2017, 29(20), 1601741.
  14. Yuan J, Fan M, Zhang F, et al. Amine-functionalized poly(ionic liquid) brushes for carbon dioxide adsorption[J]. Chemical Engineering Journal, 2017, 316, 903-910.
  15. Tang H, Zeng Y, Zeng Y, et al. Iron-embedded nitrogen doped carbon frameworks as robust catalyst for oxygen reduction reaction in microbial fuel cells[J]. Applied Catalysis B: Environmental, 2017, 202, 550-556.
  16. Zhang X, Luo J, Tang P, et al. A universal strategy for metal oxide anchored and binder-free carbon matrix electrode: A supercapacitor case with superior rate performance and high mass loading[J]. Nano energy, 2017, 31, 311-321.
  17. Xiang Y, Li J, Lei J, et al. Advanced Separators for Lithium-Ion and Lithium-Sulfur Batteries: A Review of Recent Progress[J]. Chemsuschem, 2016, 9(21), 3023-3039.
  18. Chen X, Tang H, Putzeys T, et al. Guanidinium nonaflate as a solid-state proton conductor[J]. Journal of Materials Chemistry A, 2016, 4(31), 12241-12252.
  19. Wu H, Shi L, Lei J, et al. Nitrogen and sulfur co-doped carbon with three-dimensional ordered macroporosity: An efficient metal-free oxygen reduction catalyst derived from ionic liquid[J]. Journal of Power Sources, 2016, 323, 90-96.
  20. Tang H, Zeng Y, Liu D, et al. Dual-doped mesoporous carbon synthesized by a novel nanocasting method with superior catalytic activity for oxygen reduction[J]. Nano Energy, 2016, 26, 131-138.
  21. Tang H, Zeng Y, Gao X, et al. Octa(aminophenyl)silsesquioxane derived nitrogen-doped well-defined nanoporous carbon materials: Synthesis and application for supercapacitors[J]. Electrochimica Acta, 2016, 194, 143-150.
  22. Tang H, Cai S, Xie S, et al. Metal–Organic Framework‐Derived Dual Metal and Nitrogen‐Doped Carbon as Efficient and Robust Oxygen Reduction Reaction Catalysts for Microbial Fuel Cells[J]. Advanced Science, 2016, 3(2), 1487-1498.
  23. Qu D, Zhu X, Zheng D, et al. Improve Electrochemical Hydrogen Insertion on the Carbon Materials Loaded with Pt nano-particles through H spillover[J]. Electrochimica Acta, 2015, 174, 400-405.
  24. Tang H, Xiong M, Qu D, et al. Enhanced supercapacitive performance on TiO2@C coaxial nano-rod array through a bio-inspired approach[J]. Nano Energy, 2015, 15, 75-82.
  25. Zeng Y, Han Y, Zhao Y, et al. Advanced Ti-Doped Fe2O3@PEDOT Core/Shell Anode for High-Energy Asymmetric Supercapacitors[J]. Advanced Energy Materials, 2015, 5(12), 1402176.
  26. Li J, Tang H, Chen R, et al. Highly ordered 3D macroporous scaffold supported Pt/C oxygen electrodes with superior gas-proton transportation properties and activities for fuel cells[J]. Journal of Materials Chemistry A, 2015, 3(29), 15001-15007.

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