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win德赢官网使用方法 - win德赢

姓名:周明月

【副教授】周明月

发布时间:2026-06-03


所在单位



姓名:周明月

所在单位:未来能源win德赢官网使用方法/未来能源工程系 对照阅读

所在学科:化学工程与技术

个人学位:博士

职称名称:副教授

教师类别:专任教师

导师类型:博士生导师,硕士生导师

win德赢官网使用方法专业:化学工程与技术,化学工程

电子邮箱:mingyue.zhou@visitkutahya.com


〡个人简介


周明月,win德赢官网使用方法(北京),未来能源win德赢官网使用方法,副教授/特任岗位教授,副院长(聘任制)。 相关文章博士生导师、硕士生导师。另外南京大学材料化学专业学士学位(2011-2015年),新加坡国立大学材料科学与工程专业博士学位(2015-2020年,液流电池,导师:王庆教授),于清华大学化工系进行锂金属电池电解液的博士后研究(合作导师:张强教授)并入选清华大学水木学者计划,2023年获得win德赢官网使用方法(北京)优秀青年学者培育计划支持,2025年入选中国科协青年人才托举工程。已发表40余篇SCI论文,其中以第一作者/通讯/共同通讯在Joule、Chem、Angew. Chem. Int. Ed.、Adv. Mater.、Adv. Energy Mater.、Adv. Funct. Mater.等知名期刊发表文章19篇,论文总引用次数超过3500次。主持承担win德赢官网使用方法自然科学基金青年基金、面上项目2项,及中国博士后科学基金面上项目1项。专注于电化学和能源化学的研究工作,致力于通过电解液设计和关键反应过程调控,结合关键测试表征技术。研制高性能电化学储能器件(液流电池及锂电池)。


〡win德赢官网使用方法经历


2015-092020-02, 新加坡国立大学, 材料科学与工程, 博士研究生

2011-092015-07, 南京大学, 材料化学, 大学本科


〡部分学术论文


1.Y. Li, M. Zhou (corresponding), X. Shu, Z. Guan, X. Chen, W. Wu, T. Zhang, X. Liu, Z. Fu, X. Lan, A bilayer electrode architecture enabling SnO2-induced spatial-controllable zinc deposition for ultra-high-areal-capacity zinc-based flow batteries, Advanced Materials (2026) e21391.

2.X. Liu, Y. Chen, W. Wu, Z. Guan, J. Yang, Y. Li, M. Zhou (co-corresponding), X. Lan, A reactor design approach to address the high-loading paradox in high-energy-density flow batteries, Journal of Energy Chemistry (2026). 继续了解

3.X. Chen, Y. Li, W. Xu, Z. Huang, Z. Hou, X. Liu, J. Wu, M. Zhou (co-corresponding), S. Huang, W. Liu. Unlocking Ultra‐Stable 100% DOD/DOC Zinc‐Based Flow Batteries via Synergistic Structural and Solvation Engineering for Facilitated Dead Zinc Revitalization. Advanced Functional Materials (2026) e30468.

4.李云璇, 刘新悦, 陈熙, 刘文, 周明月(通讯作者), 蓝兴英, 基于固液氧化还原靶向反应的能量存储技术:材料、器件及动力学, 化工学报75 (4) (2024) 1222.

5.S. Zhang, J. Wu, N. Jiang, H. Sun, H. Yang, L. Shen, M. Zhou (co-corresponding), W. Liu, H. Zhou, H. Zhao, Surface to bulk synergetic modulation of nickel-rich LiNi0. 83Co0. 06Mn0.11O2 via a three-in-one approach for long-cycle lithium-ion batteries, Advanced Energy Materials 14 (29) (2024) 2401123.

6.Z. Huang, X. Chen, Z. Hou, Y. Li, X. Liu, J. Wu, M. Zhou (co-corresponding), W. Liu, Interfacial adsorption-enabled trace additives for stable zinc-based flow batteries, Journal of Materials Chemistry A 13 (2025) 20620–20628.

7.J. Wu, B. Zhong, Q. Zhang, S. Zhang, X. Zhang, Z. Zhang, M. Zhou (co-corresponding), W. Liu, H. Zhou, Tailoring solvation chemistry by hydrogen bonds in carbonate electrolytes for highly stable lithium-metal batteries, Journal of Materials Chemistry A 12 (26) (2024) 15685–15692.

8.Z. Hou, X. Chen, J. Liu, Z. Huang, Y. Chen, M. Zhou (co-corresponding), W. Liu, H. Zhou, Towards a high efficiency and low-cost aqueous redox flow battery: A short review, Journal of Power Sources 601 (2024) 234242.

9.J. Wu, S. Zhang, C. Yang, X. Zhang, M. Zhou (co-corresponding), W. Liu, H. Zhou, Rational design of hierarchically-solvating electrolytes enabling highly stable lithium metal batteries with high-nickel cathodes, Energy Storage Materials 63 (2023) 103043.

10.J. Liu, L. Ren, Y. Wang, X. Lu, M. Zhou (co-corresponding), W. Liu, A Highly-Stable Bifunctional NiCo2S4 Nanoarray@ Carbon Paper Electrode for Aqueous Polysulfide/iodide Redox Flow Battery, Journal of Power Sources 561 (2023) 232607.

11.M. Zhou, J.-F. Ding, X.-Q. Ding, L.-P. Hou, P. Shi, J. Xie, B.-Q. Li, J.-Q. Huang, X.-Q. Zhang, Q. Zhang, Quantifying the Apparent Electron Transfer Number of Electrolyte Decomposition Reactions in Anode-free Batteries, Joule (Cell Sister Journal, IF=46.048) 6 (9) (2022) 2122–2137.

12.M. Zhou, X.-Q. Ding, L.-P. Hou, J. Xie, B.-Q. Li, J.-Q. Huang, X.-Q. Zhang, Q. Zhang, Protocol for Quantitative Nuclear Magnetic Resonance for Deciphering the Electrolyte Decomposition Reactions in Anode-free Batteries, STAR Protocols 3 (4) (2022) 101867.

13.M. Zhou, Y. Chen, M. Salla, H. Zhang, X. Wang, S. R. Mothe, Q. Wang, Single-Molecule Redox-Targeting Reactions for a pH-Neutral Aqueous Organic Redox Flow Battery, Angewandte Chemie International Edition 59 (34) (2020) 14286–14291.

14.M. Zhou, Y. Chen, Q. Zhang, S. Xi, J. Yu, Y. Du, Y.-S. Hu, Q. Wang, Na3V2(PO4)3 as the Sole Solid Energy Storage Material for Redox Flow Sodium-Ion Battery, Advanced Energy Materials 9 (30) (2019) 1901188.

15.M. Zhou, Q. Huang, T. N. P. Truong, J. Ghilane, Y. G. Zhu, C. Jia, R. Yan, L. Fan, H. Randriamahazaka, Q. Wang, Nernstian-Potential-Driven Redox-Targeting Reactions of Battery Materials, Chem (Cell Sister Journal) 3 (6) (2017) 1036–1049.

16.Y. Wang, L. Ren, J. Liu, X. Lu, Q. Wang, M. Zhou (co-corresponding), W. Liu, X. Sun, In situ construction of composite artificial solid electrolyte interphase for high-performance lithium metal batteries, ACS Applied Materials & Interfaces 14 (45) (2022) 50982–50991.

17.Q. Wang, H. Wang, J. Wu, M. Zhou (co-corresponding), W. Liu, H. Zhou, Advanced Electrolyte Design for Stable Lithium Metal Anode: from Liquid to Solid, Nano Energy (2020) 105516.

18.H. Sun, Y. Li, L. Gao, M. Chang, X. Jin, B. Li, Q. Xu, W. Liu, M. Zhou (co-corresponding), X. Sun, High throughput screening of single atomic catalysts with optimized local structures for the electrochemical oxygen reduction by machine learning, Journal of Energy Chemistry 81 (2023) 349–357.

19.L. Ren, X. Cao, Y. Wang, M. Zhou (co-corresponding), W. Liu, H. Xu, H. Zhou, X. Sun, 3D Porous and Li-rich Sn–Li Alloy Scaffold with Mixed Ionic-Electronic Conductivity for Dendrite-Free Lithium Metal Anodes, Journal of Alloys and Compounds (2023) 169362.

20.Y. Chen, M. Zhou, Y. Xia, X. Wang, Y. Liu, Y. Yao, H. Zhang, Y. Li, S. Lu, W. Qin, X. Wu, Q. Wang, A Stable and High-Capacity Redox Targeting-Based Electrolyte for Aqueous Flow Batteries, Joule (Cell Sister Journal) 3 (9) (2019) 2255–2267.

21.J. Liu, J. Wu, Z. Huang, M. Zhou, Y. Hu, X. Zhang, X. Shi, H. Zhou, M. Li, Y. Shao, A triphasic membrane less battery based on salting-out effect employing metal-free redox materials, Energy Storage Materials 70 (2024) 103467.

22.Z. Wang, L.-P. Hou, Z. Li, J.-L. Liang, M. Zhou, C.-Z. Zhao, X. Zeng, B.-Q. Li, A. Chen, X.-Q. Zhang, et al., Highly soluble organic nitrate additives for practical lithium metal batteries, Carbon Energy 5 (1) (2023) e283.

23.L. Ren, J. Liu, Y. Zhao, Y. Wang, X. Lu, M. Zhou, G. Zhang, W. Liu, H. Xu, X. Sun, Regulating Electronic Structure of Fe–N4 Single Atomic Catalyst via Neighboring Sulfur Doping for High Performance Lithium– Sulfur Batteries, Advanced Functional Materials (2023) 2210509.

24.Q.-K. Zhang, X.-Q. Zhang, J. Wan, N. Yao, T.-L. Song, J. Xie, L.-P. Hou, M. Zhou, X. Chen, B.-Q. Li, et al., Homogeneous and mechanically stable solid–electrolyte interphase enabled by trioxane-modulated electrolytes for lithium metal batteries, Nature Energy 8 (7) (2023) 725–735.

25.P. Shi, Z.-H. Fu, M. Zhou, X. Chen, N. Yao, L.-P. Hou, C.-Z. Zhao, B.-Q. Li, J.-Q. Huang, X.-Q. Zhang, Q. Zhang, Inhibiting Intercrystalline Reactions of Lithium Metal Anodes with Electrolytes by Heteroatom[1]Concentrated Grain Boundary, Science Advances 8 (33) (2022) eabq3445.

26.Y.-W. Song, L. Shen, N. Yao, X.-Y. Li, Z. Li, M. Zhou, X.-Q. Zhang, X. Chen, J.-Q. Huang, B.-Q. Li, Q. Zhang, Cationic Lithium Polysulfides in Lithium-sulfur Batteries, Chem 8 (11) (2022) 3031–3050.

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