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​苏华能
发布日期:2020-09-04  浏览:


苏华能 研究员
邮箱:suhuaneng@ujs.edu.cn
地址:江苏大学 能源研究院
研究方向:氢能与燃料电池

个人简介
1979年生,湖南浏阳人,工学博士,中国可再生能源学会氢能专委会委员。2002年和2005年毕业于兰州大学化学化工学院,分别获学士和硕士学位。2007-2010年于华南理工大学应用化学专业学习,获博士学位;2011-2012年于西开普大学-南非先进材料化学研究所(SAIAMC)从事博士后研究工作,主要从事固体电解质水电解制氢及高温燃料电池方面的研究;随后留所工作,任研究员(Senior Researcher),参与南非氢能项目(HySA,国家级15年长期战略项目),担任研发组长(Head of R&D Group),负责高温膜燃料电池电极的研究开发及其在热电联供系统(CHP)中的应用研究。现主要从事聚电解质膜燃料电池及固体聚合物水电解制氢电极/膜电极工程开发和应用研究,在AIChE J., Chem. Eng. J., J. Power Sources, Energy等能源工程重要期刊发表SCI论文120余篇,总共被引用6200余次,入选全球前2%顶尖科学家榜单。主持国家重点研发计划、国家自然科学基金等各类项目10余项。授权国内外专利20余项,成果转让2项,参与编著6部。获“广东省优秀博士学位论文”,“江苏大学优秀共产党员”等奖励。

研究方向
新能源技术:氢能和燃料电池能源动力系统的技术开发
燃料电池:低温和高温膜燃料电池电极/膜电极/催化剂的开发和应用
SPE水电解:固体聚合物膜(SPE)水电解电极的制备应用及材料开发

主要承担项目
2027-2030,高温膜燃料电池催化层组分调控与结构有序化协同抗磷酸毒化机制研究,国家自然科学基金面上项目(22678252),主持
2020-2023,基于催化层全有序结构聚电解质膜燃料电池高性能超低铂载量膜电极研究开发,国家重点研发计划“政府间国际科技创新合作”重点专项(2018YFE0121200),主持
2017-2020,免微孔层气体扩散电极的构建及其在高温膜燃料电池中的应用研究,国家自然科学基金面上项目(21676126),主持
2017-2020,高温膜燃料电池高效双层结构电极的理性构建及相关基础问题研究, 江苏省自然科学基金面上项目(SBK2017020174),主持
2018-2021,氢-空燃料电池动力系统关键技术-高性能低成本膜电极研发与应用,镇江市重点研发计划(GY2018024),主持
2020-2021,江苏大学-泰州新能源研究院产业化研发项目,横向科研,主持
2017-2020,江苏大学-江苏乾景新能源产业技术研究院产学研合作协议,横向科研,主持
2016-2019,江苏大学高级人才科研启动项目,主持

学术及科研成果
主要论文:(https://scholar.google.com/citations?user=OzHs_ZIAAAAJ)
[24] Qi Luo, Huiyuan Liu, Weiqi Zhang, Lindiwe Khotseng, Sivakumar Pasupathi, Huaneng Su*. Self-humidifying proton exchange membrane fuel cells: From electrode modification to integrated water-management engineering. Renewable and Sustainable Energy Reviews 2027;244:117439.
[23] Kai Peng, Narayanamoorthy Bhuvanendran, Weiqi Zhang, Sivakumar Pasupathi, Huaneng Su*. Strong interfacial coupling activates lattice oxygen of heterogeneous cerium hydroxide/nickel ferrite catalyst for robust oxygen evolution reaction performance. Composites Part B: Engineering 2026;309:113080.
[22] Zihao Tian, Huiyuan Liu, Weiqi Zhang, Qian Xu, Lindiwe Khotseng, Sivakumar Pasupathi, Huaneng Su*. Regulating local phosphoric acid environment via HDTMPA-modified catalyst layers for enhanced high-temperature proton exchange membrane fuel cells. Journal of Power Sources 2026;692:241130.
[21] Han Niu, Qingqing Liu, Huiyuan Liu, Weiqi Zhang, Qian Xu, Sivakumar Pasupathi, Huaneng Su*. Strategies for mitigating phosphoric acid poisoning to enhance HT-PEMFC performance: Review and perspectives. International Journal of Hydrogen Energy 2026;197:152693.
[20] Huiyuan Liu, Jiaqi Qin, Weiqi Zhang, Qian Xu, Narayanamoorthy Bhuvanendran, Jianwei Ren, Huaneng Su*. Towards Next-Generation proton exchange membrane fuel Cells: The role of nanostructured catalyst layers. Chemical Engineering Journal 2025;514:163196.
[19] Qingqing Liu, Huiyuan Liu, Weiqi Zhang, Qian Xu, Huaneng Su*. Enhancing high-temperature proton exchange membrane fuel cell performance with oxophilic ionic liquid modified catalyst layer. Journal of Power Sources 2025;652:237628.
[18] Qingqing Liu, Huiyuan Liu, Weiqi Zhang, Qian Xu, Lindiwe Khotseng, Sivakumar Pasupathi, Huaneng Su*. Enhanced activity and durability of high-temperature proton exchange membrane fuel cells enabled by ionic liquid-modified Pt-Ni nanochains. Energy 2025;341:139588.
[17] Kumar Divya, Qingqing Liu, Ravi Murali, Muhammad Rehman Asghar, Huiyuan Liu, Weiqi Zhang, Qian Xu, Jianwei Ren, Huaneng Su*. Integration of phosphorylated MOF/COF core-shell structures into hybrid membrane for high-temperature fuel cell application. Applied Surface Science 2025;681:161544.
[16] Weiqi Zhang, Yuan Chen, Yuan Jin, Huiyuan Liu, Qiang Ma, Qian Xu, Huaneng Su*. Effective strategy for enhancing the activity and durability of gas diffusion electrode in high-temperature polymer electrolyte membrane fuel cells: In-situ growth of Pt nanowires on dual microporous layers. Energy 2024;308:132894.
[15] Meihui Tan, Weiqi Zhang, Huiyuan Liu, Jie Zhang, Zhizhong Guo, Qiang Ma, Qian Xu, Khadijeh Hooshyari, Huaneng Su*. Revolutionizing high-temperature polymer electrolyte membrane fuel cells: Unleashing superior performance with vertically aligned TiO2 nanorods supporting ordered catalyst layer featuring Pt nanowires. Fuel 2024;357:130084.
[14] Huiyuan Liu, Jiaqi Qin, Yang Lv, Zhuo Li, Weiqi Zhang, Qian Xu, Huaneng Su*. In Situ Construction of a Nanostructured Ultrathin Catalyst Layer on Both Sides of a Membrane toward Fuel Cell Application. ACS Applied Energy Materials 2024;7(3):1340-1347.
[13] Narayanamoorthy Bhuvanendran, Sabarinathan Ravichandran, Sanghyun Lee, Fereshteh Dehghani Sanij, Sabariswaran Kandasamy, Puran Pandey, Huaneng Su*, Sae Youn Lee*. Recent progress in Pt-based electrocatalysts: A comprehensive review of supported and support-free systems for oxygen reduction. Coordination Chemistry Reviews 2024;521:216191.
[12] Sabarinathan Ravichandran, Narayanamoorthy Bhuvanendran, R. Selva Kumar, Putrakumar Balla, Sae Youn Lee, Qian Xu, Huaneng Su*. Polyhedron shaped palladium nanostructures embedded on MoO2/PANI-g-C3N4 as high performance and durable electrocatalyst for oxygen reduction reaction. Journal of Colloid and Interface Science 2023;629:357-369.
[11] Jinlong Li, Huiyuan Liu, Weiqi Zhang, Qian Xu, Sae Youn Lee, Narayanamoorthy Bhuvanendran, Huaneng Su*. In-situ preparation of low Pt loading multi rhombic-pyramidal Pt–Pd catalyst layer for high-performance proton exchange membrane fuel cells. Journal of Power Sources 2023;556:232445.
[10] Sabarinathan Ravichandran, Narayanamoorthy Bhuvanendran, Qian Xu, Thandavarayan Maiyalagan, Lei Xing, Huaneng Su*. Ordered mesoporous Pt-Ru-Ir nanostructures as superior bifunctional electrocatalyst for oxygen reduction/oxygen evolution reactions. Journal of Colloid and Interface Science 2022;608:207-218.
[9] Jinlong Li, Weiqi Zhang, Qiang Ma, Qian Xu, Olivia Barron, Khadijeh Hooshyari, Huaneng Su*. Efficient and durable gas diffusion electrode for proton exchange membrane fuel cell via in-situ growth of Pt nanowires on dual microporous layer. Journal of Power Sources 2022;525:231153.
[8] Kai Peng, Weiqi Zhang, Narayanamoorthy Bhuvanendran, Qiang Ma, Qian Xu, Lei Xing, Lindiwe Khotseng, Huaneng Su*. Pt-based (Zn, Cu) nanodendrites with enhanced catalytic efficiency and durability toward methanol electro-oxidation via trace Ir-doping engineering. Journal of Colloid and Interface Science 2021;598:126-135.
[7] Narayanamoorthy Bhuvanendran, Sabarinathan Ravichandran, Kai Peng, Qian Xu, Lindiwe Khotseng, Huaneng Su*. Aminoclay/MWCNT supported spherical Pt nanoclusters with enhanced dual-functional electrocatalytic performance for oxygen reduction and methanol oxidation reactions. Applied Surface Science 2021;565:150511.
[6] 田立亮, 张玮琦, 解政, 彭凯, 马强, 徐谦, Sivakumar Pasupathi, 苏华能*. 催化层掺杂共价有机框架材料提升高温聚电解质膜燃料电池性能. 物理化学学报 2021;37(9):2009049.
[5] Zheng Xie, Liliang Tian, Weiqi Zhang, Qiang Ma, Lei Xing, Qian Xu, Lindiwe Khotseng, Huaneng Su*. Enhanced low-humidity performance of proton exchange membrane fuel cell by incorporating phosphoric acid-loaded covalent organic framework in anode catalyst layer. International Journal of Hydrogen Energy 2021;46(18):10903-10912.
[4] Weiqi Zhang, Zhaochun Cao, Jie Zhang, Kai Peng, Qiang Ma, Qian Xu, Huaneng Su*. Enhanced Durability of Pt-Based Electrocatalysts in High-Temperature Polymer Electrolyte Membrane Fuel Cells Using a Graphitic Carbon Nitride Nanosheet Support. ACS Sustainable Chemistry & Engineering 2020;8(24):9195-9205.
[3] Narayanamoorthy Bhuvanendran, Sabarinathan Ravichandran, Santhana Sivabalan Jayaseelan, Qian Xu, Lindiwe Khotseng, Huaneng Su*. Improved bi-functional oxygen electrocatalytic performance of Pt–Ir alloy nanoparticles embedded on MWCNT with Pt-enriched surfaces. Energy 2020;211:118695.
[2] Dongmei Yao, Weiqi Zhang, Qiang Ma, Qian Xu, Sivakumar Pasupathi, Huaneng Su*. Achieving high Pt utilization and superior performance of high temperature polymer electrolyte membrane fuel cell by employing low-Pt-content catalyst and microporous layer free electrode design. Journal of Power Sources 2019;426:124-133.
[1] Huaneng Su, Qian Xu, Junjie Chong, Huaming Li, Cordellia Sita, Sivakumar Pasupathi. Eliminating micro-porous layer from gas diffusion electrode for use in high temperature polymer electrolyte membrane fuel cell. Journal of Power Sources 2017;341:302-308.

授权专利
[17] 苏华能, 段愿, 刘会园, 张玮琦, 徐谦. 一种自呼吸式柔性质子交换膜燃料电池, 发明专利,ZL202211607169.4
[16] 苏华能, 李金龙, 张玮琦, 马强, 徐谦. 一种催化剂原位生长于有序结构微孔层上的燃料电池电极及膜电极的制备方法, 发明专利,ZL202011190962.X
[15] 苏华能, 李金龙, 张玮琦, 马强, 徐谦. 一种基于双层有序结构微孔层的燃料电池电极原位制备方法, 发明专利,ZL202011156731.7
[14] 苏华能, 姚东梅, 张玮琦, 马强, 徐丽, 徐谦, 李华明. 一种催化层全有序燃料电池电极和膜电极, 发明专利,ZL201810279389.6
[13] 苏华能, 田立亮, 张玮琦, 马强, 徐谦. 可缓解磷酸电解质流失的高温膜燃料电池电极及其制备方法, 发明专利,ZL201911016085.1
[12] 苏华能, 解政, 张玮琦, 徐谦. 共价有机框架材料用于燃料电池自增湿膜电极及其制备方法, 发明专利,ZL201911346600.2
[11] 苏华能, 张玮琦,马强,朱新坚, 吴曌慧,马夜明. 一种组合再生式燃料电池系统放电工作模式启动方法, 发明专利,ZL201810022421.2
[10] 苏华能, 吴曌慧. 一种便于组装拆卸的燃料电池测试用夹具工装, 实用新型专利,ZL202022667038.8
[9] 苏华能, 吴曌慧. 一种可高效导热导电的燃料电池测试用夹具, 实用新型专利,ZL202022667036.9
[8] 张玮琦,苏华能, 马强,朱新坚, 吴曌慧. 一种增强燃料电池运行稳定性的方法, 发明专利,ZL201910083093.1
[7] 姚东梅, 苏华能, 张玮琦, 马强, 徐丽, 徐谦, 李华明. 一种催化层全有序结构燃料电池电极和膜电极的制备方法, 发明专利,ZL201810296464.X
[6] 姚东梅,苏华能,朱新坚等,一种固体电解质水电解膜电极及其制备方法,发明专利,ZL201910596174.1
[5] 张玮琦, 苏华能, 马强, 徐谦. 一种碳材料修饰石墨相氮化碳纳米片负载铂纳米电催化剂的制备方法及其应用, 发明专利,ZL201911300012.5
[4] 彭凯,苏华能, 朱新坚, 吴曌慧. 一种采用污泥制备燃料电池催化剂的方法, 发明专利,ZL201910586394.6
[3] 田立亮,苏华能, 朱新坚, 吴曌慧. 一种能够改善质子交换膜燃料电池低湿度运行性能的膜电极制备方法, 发明专利,ZL201910586394.6
[2] 马强,苏华能, 张玮琦,朱新坚, 吴曌慧. 一种磷酸掺杂聚苯并咪唑高温膜燃料电池膜电极快速活化方法, 发明专利,ZL201910083080.4
[1] Huaneng Su, Jinlong Li, Weiqi Zhang, Qiang Ma, Qian Xu. Fuel cell electrodewith catalysts grown in situ on ordered structure microporous layer and method for preparing membrane electrode assembly, 美国专利,US17/446,187


 
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中华人民共和国科学技术部
国家自然科学基金委员会
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