一、基本信息
姓 名: | 陈东瑞 | 
|
职务/职称: | 省级“双一流”应用特色学科秘书/双师双能型副教授 |
学 位: | 博 士 |
专 业: | 新能源材料化学与物理 |
研究领域: | 储能电池关键材料 |
硕士生导师、邵阳市电池级碳酸锂材料工程技术研究中心主任、邵阳市青年科技工作者协会会员、邵阳市大学生创业导师/邵阳市高层次人才、邵阳学院青年骨干教师 |
二、教育背景
2011年09月-2018年01月,华南师范大学,化学与环境学院,新能源材料化学与物理专业,博士
2015年11月-2017年05月,新加坡国立大学,机械工程系,储能材料专业,联合培养博士
三、工作履历
2025年11月-至今,邵阳学院机械与能源工程学院,副教授
2024年08月-至今,邵阳市电池级碳酸锂材料工程技术研究中心,主任
2021年11月-至今,邵阳学院,“机械工程”湖南省应用特色学科秘书
2019年09月-2025年11月,邵阳学院机械与能源工程学院,助理研究员、讲师
2018年01月-2019年06月,邵东县仙人岭生态农业有限公司,技术顾问
四、学术兼职
2025年08月-至今,邵阳市大学生创业导师
2025年04月-至今,任Ionics(SCI期刊)审稿人
2023年04月-至今,邵阳市青年科技工作者协会会员
2022年11月-至今,任Functional Materials Letters(SCI期刊)审稿人
2019年05月-至今,任Materials Letters(SCI期刊)审稿人
2017年02月-至今,任Materials Technology(SCI期刊)审稿人
五、科研成果
1、科研项目
[1] 邵阳市重点研发创新项目,2025GZ2008,2025.12-2027.12
[2] 邵阳市创新能力培育项目,2024GZ3029,2024.12-2026.12
[3] 企业委托项目,2024HX110,2024.05-2025.05
[4] 邵阳市科技创新指导性项目,2022GX4047,2022.09-2025.06
[5] 邵阳市科技计划创新引导项目,2022GZ3035,2022.09-2023.12
[6] 湖南省教育厅科学研究项目优秀青年项目,22B0747,2022.08-2025.08
[7] 湖南省自然科学基金联合基金,2022JJ50215,2022.01-2024.12
[8] 湖南省学位与研究生教学改革研究项目,2021JGYB208,2021.09-2025.06
[9] 湖南省教育厅科学研究项目优秀青年项目,20B534,2020.01-2022.12
[10] 湖南省教育厅科学研究项目优秀青年项目,20B533,2020.01-2022.12
[11] 华南师范大学研究生科研创新基金,2015lkxm09,2015.09-2016.08
[12] 国家自然科学基金面上项目,21373092,2014.01-2015.12
[13] 容桂科技计划项目,2013.07-2016.06
[14] 广东省第二批战略性新兴产业核心技术攻关项目,2012A010702003,2012.01-2014.12
2、代表性论文
[1] Two-Dimensional Reduced Graphene Oxide/Glycolate-Mn Hybrids for High performance Lithium Ion Anodes, Functional Materials Letters, 2026, Accepted.
[2] Effect of Heat Treatment on Microstructure and Mechanical Properties of Mg-Gd-Zn-Ti-xAl Alloys, Materials Research-Ibero-american Journal of Materials, 2025, 28, e20250321.
[3] Effect of homogenization treatment on the morphology evolution of LPSO phase and the corresponding mechanical properties of Mg-8Gd-5Y-2.5Zn-0.6Zr alloys, Materia-Rio de Janeiro, 2025, 30, e20240840.
[4] Enhancement effect of semicoke waste heat on energy conservation and hydrogen production from biomass gasification, Renewable Energy, 2024, 236, 121340.
[5] Effect of Y addition on microstructure and mechanical properties of cast Mg-Gd-Zn-Zr alloys, Materia-Rio de Janeiro, 2024, 29, e20240602.
[6] The study of electrochemical stabilization mechanism of Pt, GC, SS304, Ti and Cu as current collectors for aqueous lithium-ion batteries by electrochemical approaches, Functional Materials Letters, 2024, 17, 8, 2451047.
[7] Effect of Compaction Pressure on Electrochemical Performance of Layered Lithium-rich oxide, Functional Materials Letters, 2023, 15, 2251055.
[8] 锌对固溶态Mg-Y-Nd-Zr合金显微组织及力学性能的影响, 中国稀土学报, 2024, 42, 568-573.
[9] 热处理对Mg-Gd-Y-Zn-Ti合金微观组织和性能的影响, 特种铸造及有色合金, 2024, 44, 392-397.
[10] 压力对富锂氧化物材料电化学性能的影响, 邵阳学院学报(自然科学版), 2022, 19, 26-32.
[11] Porous Silicon Particles Embedded in N-doped Graphene and Carbon Nanotube Framework for High-Performance Lithium-Ion Batteries, Journal of Alloys and Compounds, 2022, 927, 167055.
[12] Enhancement of strength and elastic modulus of Mg-Gd-Y-Zn-Zr alloy by Sn addition, Materials Science and Engineering A-Structural Materials Properties Microstructure and Processing, 2022, 854, 143885.
[13] Effect of Al addition on microstructure and mechanical properties of Mg−Gd−Zn alloys, Transactions of Nonferrous Metals Society of China, 2022, 32, 824-837.
[14] 微弧氧化及封孔处理对铸造Al-Cu-Mg-Ag合金耐腐蚀性能的影响, 材料保护, 2022, 55, 117-124.
[15] Effect of Li3PO4 coating of layered lithium-rich oxide on electrochemical performance, Journal of Power Sources, 2017, 341, 147-155.
[16] Facile synthesis of grape-like Li[Li0.13Mn0.56Ni0.31]O2 with good electrochemical performance for lithium ion batteries, Materials Technology, 2017, 32, 614-621.
[17] Enhancing Electrochemical Performance of High Voltage (4.5 V) Graphite/ LiNi0.5Co0.2Mn0.3O2 Cell by Tailoring Cathode Interface, Journal of The Electrochemical Society, 2017, 164, A137-A144.
[18] Synthesis and performances of Li-Rich_AlF3_Graphene as cathode of lithium ion battery, Electrochimica Acta, 2016, 193, 45-53.
[19] Layered Lithium-Rich Oxide Nanoparticles Doped with Spinel Phase: Acidic Sucrose-Assistant Synthesis and Excellent Performance as Cathode of Lithium Ion Battery, ACS Applied Materials & Interfaces, 2016, 8, 4575-4584.
[20] Enhanced Electrokinetic Remediation of Copper-Contaminated Soils near a Mine Tailing Using the Approaching-Anode Technique, Journal of Environmental Engineering, 2016, 142, 04015079.
[21] Enhanced Electrokinetic Remediation Of Zinc-Contaminated Soils Near A Mine Tailing With Approaching Anode Technique, Fresenius Environmental Bulletin, 2016, 25, 3867-3874.
[22] Porous layered lithium-rich oxide nanorods: Synthesis and performances as cathode of lithium ion battery, Electrochimica Acta, 2015, 154, 83-93.
[23] Sulfur loaded in curved graphene and coated with conductive polyaniline: preparation and performance as a cathode for lithium–sulfur batteries, Journal of Materials Chemistry A, 2015, 3, 18098-18104.
[24] Polyethylene glycol-assisted synthesis of hierarchically porous layered lithium-rich oxide as cathode of lithium ion battery, Journal of Power Sources, 2015, 279, 194-204.
[25] Sulfur supported by carbon nanotubes and coated with polyaniline: Preparation and performance as cathode of lithium-sulfur cell, Electrochimica Acta, 2015, 166, 93-99.
[26] Enhanced high voltage performances of layered lithium nickel cobalt manganese oxide cathode by using trimethylboroxine as electrolyte additive, Electrochimica Acta, 2015, 176, 919-925.
[27] Influence of Fe substitution on cycling stability of Li[Li0.2Ni0.13Mn0.54Co0.13]O2 cathode for lithium ion batteries, Ionics, 2015, 21, 1827-1833.
[28] Effects of Electrode Material on the Electrokinetic Remediation of Cadmium-Contaminated Soil near a Mine Tailing, Fresenius Environmental Bulletin, 2015, 24, 1940-1946.
[29] Improved electrochemical performance of LiNi0.5Mn1.5O4 as cathode of lithium ion battery by Co and Cr co-doping, Journal of Solid State Electrochemistry, 2014, 18, 2027-2033.
[30] Facile synthesis of Li2C8H4O4–graphene composites as high-rate and sustainable anode materials for lithium ion batteries, RSC Advances, 2014, 4, 59498-59502.
3、出版专著
[1] Effects of Multi-Factors on Biomass Gasification Based on Big Data, Modern Management Based on Big Data IV, 2023, 370, 413-419, IOP Press.
4、专利
[1] 一种操作简单、快速高效的便携式自恢复紧急破窗器,实用新型,ZL 2021 2 0824452.7。
[2] 一种具有均匀磷酸锂包覆层的锰基层状富锂材料及其制法,发明专利,ZL 2016 1 0895892.5。
[3] 双层包覆的锰基层状富锂材料及其制备方法,发明专利,ZL 2015 1 0586654.1。
[4] 用于高容量锂离子电池正极材料Li[Li0.201Ni0.133Co0.133Mn0.533]O2的制备方法,发明专利,ZL 2013 1 0747314.3。
[5] 一种锂硫电池复合正极材料及其制备方法与应用,发明专利,ZL 2014 1 0589010.3。
[6] 一种氮掺杂多孔碳/硫复合正极材料及其制备方法与应用,发明专利,ZL 2014 1 0818596.6。
[7] 一种锂硫电池球形复合正极材料及其制备方法与应用,发明专利,ZL 2014 1 0821531.7。
[8] 一种锰基包碳纳米富锂氧化物及其制备方法与应用,发明专利,ZL 2016 1 0214412.4。
六、奖励与荣誉
[1] 2025年获“邵阳学院教学成果奖”特等奖;
[2] 2025年获“邵阳学院优秀班主任”荣誉称号;
[3] 2024年获“邵阳学院优秀班主任” 荣誉称号;
[4] 2023年获“湖南省首届自然科学优秀学术论文”三等奖;
[5] 2022年获“邵阳学院教学成果奖”一等奖;
[6] 2022年获“邵阳学院首届课程思政教学案例设计大赛”一等奖;
[7] 2021年获 “邵阳市高层次人才(E类:高级人才)”称号;
[8] 2020年被授予邵阳学院“青年骨干教师”称号;
[9] 2016年获华南师范大学“曾永裕奖学金”优秀研究生毕业生称号;
[10] 2015年获国家留学管理基金委(CSC)“国家建设高水平大学公派研究生项目(201506750033)”到新加坡国立大学(National University of Singapore)公派留学;
[11] 2016年获华南师范大学第五届研究生“十佳优秀学术论文”;
[12] 2015年获华南师范大学第四届研究生“十佳优秀学术论文”;
[13] 2016年获华南师范大学“研究生国家奖学金”;
[14] 2015年获华南师范大学“研究生国家奖学金”;
[15] 2016年获华南师范大学“研究生学业奖学金”一等奖;
[16] 2015年获华南师范大学“研究生学业奖学金”一等奖;
[17] 2014年获华南师范大学“研究生学业奖学金”二等奖。