
2026至今:中国科学院上海高等研究院,研究员
2022~2025:墨尔本大学,澳大利亚优秀青年研究员(ARC DECRA)
2020~2021:墨尔本大学,Research Associate(李丹教授)
2019~2020:新南威尔士大学,Research Associate(Rose Amal院士)
2017~2019:中国科学院化学研究所,“博新计划”博士后(万立骏院士、胡劲松研究员)
2014~2017:中国科学院化学研究所,博士学位(胡劲松研究员)
2011~2014:重庆大学,硕士学位(魏子栋教授)
长期聚焦电催化界面调控与能源转化研究,以第一/通讯作者在Acc. Chem. Res.、JACS、Angew. Chem.、Adv. Mater.等发表论文33篇,相关成果已被他引10000余次,H因子48。
1. 氢能与小分子电催化
2. 电化学有机合成与高值转化
3. 电催化材料设计与界面调控
1. 中国科学院上海高等研究院 拔尖人才计划,2026年
2. 澳大利亚优秀青年基金 (ARC DECRA), 2022年
3. 全球前2%顶尖科学家, 2020年
4. 博士后创新人才支持计划, 2017年
5. 中国科学院院长优秀奖, 2017年
1. 中国科学院引才项目B类,中国科学院计划,项目负责人,2026~2029
2. 中国科学院上海高等研究院拔尖人才计划,院自主部署,项目负责人,2026~2031
3. 澳大利亚研究理事会优秀青年基金(ARC DECRA),项目负责人,2022~2025
4. 国家自然科学基金青年项目(现“青C”项目),基金委,项目负责人,2019~2022
5. 中国第二批博士后创新人才支持计划(博新计划),项目负责人,2017~2019
6. 博士后科学基金面上资助,博士后科学基金会,项目负责人,2017~2019
[1] Understanding the high activity of Fe–N–C electrocatalysts in oxygen reduction: Fe/Fe3C nanoparticles boost the activity of Fe–Nx, J. Am. Chem. Soc., 2016, 138, 3570.
[2] Electronic and morphological dual modulation of cobalt carbonate hydroxides by Mn doping towards highly efficient and stable bifunctional electrocatalysts for overall water splitting, J. Am. Chem. Soc., 2017, 139, 8320.
[3] Se-doping activates FeOOH for cost-effective and efficient electrochemical water oxidation, J. Am. Chem. Soc., 2019, 141, 7005.
[4] Metastable rock salt oxide-mediated synthesis of high-density dual-protected M@NC for long-life rechargeable Zinc–air batteries with record power density, J. Am. Chem. Soc., 2020, 142, 7116–7127.
[5] Cobalt-Oxygen Coordination Steering *NO Hydrogenation in Nitrate Electroreduction, Angew. Chem. Int. Ed., 2025, 64, e202508227.
[6] Structural Modulation of Nanographene for Oxygen Reduction Reaction: Defects, Size and Doping, Angew. Chem. Int. Ed., 2025, 64, e202415071.
[7] Crystallinity modulated electrocatalytic activity of nickel(II) borate thin layer on Ni3B for efficient water oxidation, Angew. Chem. Int. Ed., 2017, 56, 6572.
[8] Anchoring sites engineering in single-atom catalysts for highly efficient electrochemical energy conversion reactions, Adv. Mater., 2021, 33, 2102801.
[9] Organic small molecule activates transition metal foam for efficient oxygen evolution reaction, Adv. Mater., 2020, 32, 1906015.
[10] Synergistic modulation of non-precious-metal electrocatalysts for advanced water splitting, Acc. Chem. Res., 2020, 53, 1111-1123.
[11] Universal synthesis strategies for single-atom catalysts toward versatile catalysis at electric interface, Matter, 2025, 8, 102424.
[12] Scaling up metal-organic frameworks for efficient kilowatt-level alkaline water electrolysis, Sci. China Chem., 2026, 69, 11.
[13] Enhancing interfacial dynamic stability through accelerated reconstruction to inhibit iron-loss during initial electrochemical activation, Adv. Energy Mater., 2024, 14, 2302403.
[14] Autogenous growth of hierarchical NiFe(OH)x/FeS nanosheet-on-microsheet arrays for synergistically enhanced high-output water oxidation, Adv. Funct. Mater., 2019, 29, 1902180.
[15] Kinetically controlled coprecipitation for general fast synthesis of sandwiched metal hydroxide nanosheets/graphene composites towards efficient water splitting, Adv. Funct. Mater., 2018, 28, 1704594.
[16] Mitigating the reconstruction of metal sulfides for ultrastable oxygen evolution at high current density, CCS Chem., 2024, 6, 137.
[17] Molecularly engineered strong metal oxide-support interaction enables highly-efficient and stable CO2 electroreduction, ACS Catal., 2020, 10, 13227.
[18] When MoS2 meets FeOOH: A “one-stone-two-birds’’ heterostructure as a bifunctional electrocatalyst for efficient alkaline water splitting, Appl. Catal. B: Environ., 2019, 244, 1004.
[19] Chemical state of surrounding iron species affects the activity of Fe-Nx for electrocatalytic oxygen reduction, Appl. Catal. B: Environ., 2019, 251, 240.
[20] Revisiting self-discharge of supercapacitors with multilayered graphene membrane as a model nanoporous electrode, Energy Storage Mater., 2025, 74, 103969.

