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电化学学科“十五五”发展趋势及优先研究领域
文献类型:期刊文献
中文题名:Development Trends and Priority Research Fields of Electrochemical Discipline in the 15th Five Year Plan Period
英文题名:电化学学科“十五五”发展趋势及优先研究领域
作者:Lin Zhuang[1];Wen-Bin Cai[2];Heng-Xing Ji[3];Qing Li[4];Gong-Wei Wang[5];Sen Xin[6];Qing Zhao[7];Fang-Yi Cheng[7];Yu-Guo Guo[6];Lan-Qun Mao[8];Yang Tian[9];Fei Wu[8];Li-Min Zhang[9];Yan Xiang[10];Jin-Song Hu[11];Rui Cao[12];Li Xiao[13];Hua-Bing Tao[14];Wei Xing[15];Dong-Ping Zhan[16];Hong-Gang Liao[17];Mei-Ling Xiao[18];Bin Ren[19];Zhang-Quan Peng[20];Rui Wen[21];Xiang Wang[22];Yue-Feng Song[23];Hou-Fu Lv[24];Bao-Yu Xia[25];Guo-Xiong Wang[26];Jun Cheng[27];Zhi-Pan Liu[28];Min Zhou[29];Bing Huang[1];Cun-Pu Li[30];Yu-Qin Zou[31];Shuang-Yin Wang[31];Hai-Bo Lin[32];Zi-Dong Wei[30]
机构:[1]College of Chemistry and Molecular Sciences,Wuhan University,Wuhan,430072,P.R.China;[2]Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials,Collaborative Innovation Center of Chemistry for Energy Materials,Department of Chemistry,Fudan University,Shanghai,200438,P.R.China;[3]School of Chemistry and Materials Science,University of Science and Technology of China,Hefei,230026,P.R.China;[4]State Key Laboratory of Materials Processing and Die&Mould Technology,School of Materials Science and Engineering,Huazhong University of Science and Technology,Wuhan,430074,P.R.China;[5]College of Chemistry and Molecular Sciences,Hubei Key Laboratory of Electrochemical Power Sources,Wuhan University,Wuhan,430072,P.R.China;[6]CAS Key Laboratory of Molecular Nanostructure and Nanotechnology,Institute of Chemistry,Chinese Academy of Sciences,Beijing,100190,P.R.China;[7]State Key Laboratory of Advanced Chemical Power Sources,College of Chemistry,Nankai University,Tianjin,300071,P.R.China;[8]College of Chemistry,Beijing Normal University,Beijing,100875,P.R.China;[9]School of Chemistry and Molecular Engineering,East China Normal University,Shanghai,200241,P.R.China;[10]Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education,Beijing Key Laboratory of Bio-inspired Energy Materials and Devices,School of Chemistry and Environment,Beihang University,Beijing,100191,P.R.China;[11]Beijing National Laboratory for Molecular Sciences(BNLMS),Institute of Chemistry,Chinese Academy of Sciences,Beijing,100190,P.R.China;[12]Key Laboratory of Applied Surface and Colloid Chemistry,Ministry of Education,School of Chemistry and Chemical Engineering,Shaanxi Normal University,Xi’an,710119,P.R.China;[13]College of Chemistry and Molecular Sciences,Hubei Key Lab of Electrochemical Power Sources,Wuhan University,Wuhan,430072,P.R.China;[14]New Cornerstone Science Laboratory,State Key Laboratory for Physical Chemistry of Solid Surfaces,Collaborative Innovation Center of Chemistry for Energy Materials,and College of Chemistry and Chemical Engineering,Xiamen University,Xiamen,361005,P.R.China;[15]State Key Laboratory of Electroanalytical Chemistry,Changchun Institute of Applied Chemistry,Chinese,Academy of Sciences,Changchun 130022,P.R.China;[16]State Key Laboratory of Physical Chemistry of Solid Surfaces,Engineering Research Center of Electrochemical Technologies of Ministry of Education,College of Chemistry and Chemical Engineering,Xiamen University,Xiamen,361005,P.R.China;[17]State Key Laboratory of Physical Chemistry of Solid Surfaces,Engineering Research Center of Electrochemical Technologies of Ministry of Education,College of Chemistry and Chemical Engineering,and Discipline of Intelligent Instrument and Equipment,Xiamen University,Xiamen,361005,P.R.China;[18]State Key Laboratory of Electroanalytical Chemistry,Changchun Institute of Applied Chemistry,Chinese Academy of Sciences,Changchun,130022,P.R.China;[19]State Key Laboratory of Physical Chemistry of Solid Surfaces,Department of Chemistry,College of Chemistry and Chemical Engineering,Xiamen University,Xiamen,361005,P.R.China;[20]Laboratory of Advanced Spectro-electrochemistry and Li-ion Batteries,Dalian Institute of Chemical Physics,Chinese Academy of Sciences,Dalian,116023,P.R.China;[21]Key Laboratory of Molecular Nanostructure and Nanotechnology,Beijing National Laboratory for Molecular Sciences,CAS Research/Education Center for Excellence in Molecular Sciences,Institute of Chemistry,Chinese Academy of Sciences,Beijing,P.R.China;[22]State Key Laboratory of Physical Chemistry of Solid Surfaces,Collaborative Innovation Center of Chemistry for Energy Materials(iChEM),MOE Key Laboratory of Spectrochemical Analysis&Instrumentation,Department of Chemistry,College of Chemistry and Chemical Engineering,Xiamen University,Xiamen,361005,P.R.China;[23]Dalian Institute of Chemical Physics,Chinese Academy of Sciences,P.R.China;[24]Suzhou Laboratory,Suzhou,215123,P.R.China;[25]School of Chemistry and Chemical Engineering,Huazhong University of Science and Technology,Wuhan,430074,P.R.China;[26]Department of Chemistry,Fudan University,Shanghai,200438,P.R.China;[27]State Key Laboratory of Physical Chemistry of Solid Surfaces,Collaborative Innovation Center of Chemistry for Energy Materials(iChEM),Department of Chemistry,College of Chemistry and Chemical Engineering,Xiamen University,Xiamen,361005,P.R.China;[28]State Key Laboratory of Porous Materials for Separation and Conversion,Collaborative Innovation Center of Chemistry for Energy Material,Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials,Key Laboratory of Computational Physical Science,Department of Chemistry,Fudan University,Shanghai,200433,P.R.China;[29]State Key Laboratory of Green Chemical Engineering and Industrial Catalysis,Centre for Computational Chemistry and Research Institute of Industrial Catalysis,East China University of Science and Technology,Shanghai,200237,P.R.China;[30]State Key Laboratory of Advanced Chemical Power Sources,School of Chemistry and Chemical Engineering,Chongqing University,Chongqing,400044,P.R.China;[31]State Key Laboratory of Chemo/Bio-Sensing and Chemometrics,College of Chemistry and Chemical Engineering,Hunan University,Changsha,410082,P.R.China;[32]State Key Laboratory of Inorganic Synthesis and Preparative Chemistry,Jilin University,Changchun,130012,P.R.China
年份:2025
卷号:31
期号:10
起止页码:84
中文期刊名:电化学(中英文)
外文期刊名:Journal of Electrochemistry
收录:;北大核心:【北大核心2023】;
语种:英文
中文关键词:energy storage;electrochemistry;strategic symposium;chemical sciences;interfacial electrocatalysis;hydrogen energy;bioelectrochemistry;electrochemical micro nano manufacturing;
摘要:In fulfillment of the national science-and-technology development agenda, the Department of Chemical Sciences of the National Natural Science Foundation of China (NSFC) convened the Strategic Symposium on the Fifteenth FiveYear (20262030) Development Plan for Electrochemistry held in Xiamen on 29 August, 2025-the culminating year of the Fourteenth Five-Year (2021-2025) Development Plan. More than forty leading experts in the field of electrochemistry participated with spanning nine thematic fronts: Interfacial Electrocatalysis, Interfacial Electrochemistry for Energy Storage, Bioelectrochemistry, Electrochemistry of Hydrogen Energy, Electrochemical Micro-/Nano-Manufacturing, Operando Electrochemical Characterization, Electro-Thermal Coupling Catalysis, Theoretical and Computational Electrochemistry,and Electrochemical Synthesis. The forum assembled China's foremost electrochemical expertise to blueprint high-quality disciplinary growth for the coming five-year period, thereby serving overarching national strategic needs and sharpening the international competitiveness of Chinese electrochemistry.This paper is presented to highlight the strategic needs and priority areas for the next five years (2026-2030) based on this symposium. The development status of basic research and applied basic research in China's electrochemistry field is systematically reviewed. The in-depth analyses of the existing problems and key challenges in the research and development of electrochemistry related fields are outlined, and the frontier research areas and development trends in the next 5-10 years by integrating national major strategic needs are discussed, which will further promote the academic community to reach a clearer consensus. The proposed strategic roadmap is intended to accelerate a sharpened community consensus, propel the discipline toward high-quality advancement, and furnish a critical reference for building China into a world-leading science and technology power.
为落实国家科技发展规划总体部署,在“十四五”的收官之年,由国家自然科学基金委员会化学科学部主办的电化学“十五五”发展规划战略研讨会于2025年8月29日在厦门成功举办。本次战略研讨会汇聚国内电化学领域的顶尖智慧,为我国电化学学科在“十五五”期间的高质量发展进行布局谋篇,对服务国家重大战略需求、提升我国电化学研究的国际竞争力具有重要意义。本文将聚焦这次战略研讨会对我国未来五年(2026-2030)电化学学科发展提出的战略需求及优先领域,由来自界面电催化、储能界面电化学、生物电化学、氢能电化学、电化学微/纳制造、电化学工况表征、电-热耦合催化、理论与计算电化学发展战略、电化学合成等9个研究方向40多位国内电化学领域领军专家,系统梳理了我国电化学基础研究与应用基础研究的发展现状,深入剖析电化学学科发展面临的核心问题与关键挑战,并结合国家重大战略需求提出未来5-10年电化学学科的前沿领域和发展趋势,进一步推动学术界形成更清晰的共识。本文所凝练的电化学学科“十五五”发展规划战略及优先领域建议,将为推动电化学学科高质量发展、支撑科技强国建设提供重要参考。
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