In Situ Aminolysis of Fluoroethylene Carbonate Induced Low‐Resistance Interphase Facilitating Extreme Fast Charging of Graphite Anodes
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- Title
- In Situ Aminolysis of Fluoroethylene Carbonate Induced Low‐Resistance Interphase Facilitating Extreme Fast Charging of Graphite Anodes
- Creators
- Hao Zhang - Peking University Shenzhen HospitalZhibo Song - Peking University Shenzhen HospitalKai Yang - University of SurreyYundong Zhou - National Physical LaboratoryYuchen Ji - Peking University Shenzhen HospitalLu Wang - Peking University Shenzhen HospitalYuxiang Huang - Peking University Shenzhen HospitalShenyang Xu - Peking University Shenzhen HospitalJianjun Fang - Peking University Shenzhen HospitalWenguang Zhao - Peking University Shenzhen HospitalGuoyu Qian - Peking University Shenzhen HospitalShanglin Wu - Peking University Shenzhen HospitalJosé V. Anguita - University of SurreyGustavo F. Trindade - National Physical LaboratoryShida Xue - Peking University Shenzhen HospitalHaoliang Wang - Peking University Shenzhen HospitalIan S. Gilmore - National Physical LaboratoryYan Zhao - Peking University Shenzhen HospitalFeng Pan - Peking University Shenzhen Hospital
- Publication Details
- Advanced energy materials
- Publisher
- WILEY-V C H VERLAG GMBH; WEINHEIM
- Number of pages
- 12
- Publication Date
- 26/03/2025
- Grant note
- Research Foundation for Advanced Talents of Jiangsu University: 23JDG041 Research Foundation for Advanced Talents of Jiangsu University, ChinaMajor Science and Technology Infrastructure Project of Material Genome Big-science Facilities Platform: 2015B01015 Municipal Development and Reform Commission of Shenzhen, International Joint Research Center for Electric Vehicle Power Battery and Materials: 2017B030301013 Guangdong Key Laboratory of Design and calculation of New Energy Materials: ZDSYS201707281026184 Shenzhen Key Laboratory of New Energy Resources Genome Preparation and Testing: 2021B1515130002 Basic and Applied Basic Research Foundation of Guangdong Province
This work was financially supported by Research Foundation for Advanced Talents of Jiangsu University, China (Grant No. 23JDG041), The Major Science and Technology Infrastructure Project of Material Genome Big-science Facilities Platform supported by Municipal Development and Reform Commission of Shenzhen, International Joint Research Center for Electric Vehicle Power Battery and Materials (No.2015B01015), Guangdong Key Laboratory of Design and calculation of New Energy Materials (No. 2017B030301013), Shenzhen Key Laboratory of New Energy Resources Genome Preparation and Testing (No. ZDSYS201707281026184), Basic and Applied Basic Research Foundation of Guangdong Province (No. 2021B1515130002).
- Identifiers
- 99993755202346; WOS:001506292600001
- Academic Unit
- School of Computer Science and Electronic Engineering
- Language
- English
- Resource Type
- Journal article