郑南峰 (NanFeng Zheng)
化学化工学院
ResearcherID:G-4613-2010
2023年当选中国科学院院士。 入选教育部“长江学者奖励计划”特聘教授、国家杰出青年科学基金、国家特支计划科技创新领军人才、国家百千万人才工程、新基石研究员。以第一完成人获国家自然科学奖二等奖、首届科学探索奖、何梁何利基金科学与技术创新奖、教育部青年科学奖、中国青年科技奖、中国化学会-英国皇家化学会青年化学奖、东京大学Zasshi-kai讲席奖、中国化学会青年化学奖等。
已发表成果:
WOK 论文 270 篇;中文核心 10 篇;其它论文 20 篇;专利发明 31 个;
Full Selectivity Control over the Catalytic Hydrogenation of Nitroaromatics Into Six Products
A Solid Electrolyte RHE for Electrode Diagnosis of Proton Exchange Membrane Water Electrolyzers
Ligand Modification-Induced Electronic Effects and Synergistic Protic Solvent Effects Promote C=O Bond Hydrogenation
The gap between academic research on proton exchange membrane water electrolysers and industrial demands
Is it Stable for the Asymmetric Pressure Operation of Pem Water Electrolyzer?
Chiroptical Activity Amplification of Chiral Metal Nanoclusters via Surface/Interface Solidification
A Versatile Strategy for the Controlled Synthesis of Atomically Precise Palladium Nanoclusters
Redox-Sensitive NiO<sub> <i>x</i> </sub> Stabilizing Perovskite Films for High-Performance Photovoltaics
Constructing Robust 3D Ionomer Networks in the Catalyst Layer to Achieve Stable Water Electrolysis for Green Hydrogen Production
Frustrated Lewis pairs on pentacoordinated Al<SUP>3+</SUP>-enriched Al<sub>2</sub>O<sub>3</sub> promote heterolytic hydrogen activation and hydrogenation
Probing current density distribution over a catalyst layer at the micrometer scale in a water electrolyzer
Managed spatial strain uniformity for efficient perovskite photovoltaics enables minimized energy deficit
Efficient and Stable Proton Exchange Membrane Water Electrolysis Enabled by Stress Optimization
Optimizing Ionomer Distribution in Anode Catalyst Layer for Stable Proton Exchange Membrane Water Electrolysis
Cu66 nanoclusters from hierarchical square motifs: Synthesis, assembly, and catalysis
Highly Efficient and Stable Perovskite Solar Modules Based on FcPF<sub>6</sub> Engineered Spiro-OMeTAD Hole Transporting Layer
Color center-rich γ-Al2O3 promotes propane dehydrogenation
极端工况下撬装式电解水制氢系统热需求分析及优化模拟
厦门大学学报(自然科学版),0438-0479,2024-08-29.营造鼓励年轻学者解决真正科学问题的氛围
中国科学基金,1000-8217,2024-07-03.