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题名

Monolayer MoS2 Fabricated by In Situ Construction of Interlayer Electrostatic Repulsion Enables Ultrafast Ion Transport in Lithium-Ion Batteries

作者
通讯作者Zhao,Tianshou
发表日期
2023-12-01
DOI
发表期刊
ISSN
2311-6706
EISSN
2150-5551
卷号15期号:1
摘要

Highlights: In-situ construction of electrostatic repulsion between MoS interlayers is first proposed to successfully prepare Co-doped monolayer MoS under high vapor pressure.The doped Co atoms radically decrease bandgap and lithium ion diffusion energy barrier of monolayer MoS and can be transformed into ultrasmall Co nanoparticles (~2 nm) to induce strong surface-capacitance effect during conversion reaction.The Co doped monolayer MoS shows ultrafast ion transport capability along with ultrahigh capacity and outstanding cycling stability as lithium-ion-battery anodes. Abstract: High theoretical capacity and unique layered structures make MoS a promising lithium-ion battery anode material. However, the anisotropic ion transport in layered structures and the poor intrinsic conductivity of MoS lead to unacceptable ion transport capability. Here, we propose in-situ construction of interlayer electrostatic repulsion caused by Co+ substituting Mo between MoS layers, which can break the limitation of interlayer van der Waals forces to fabricate monolayer MoS, thus establishing isotropic ion transport paths. Simultaneously, the doped Co atoms change the electronic structure of monolayer MoS, thus improving its intrinsic conductivity. Importantly, the doped Co atoms can be converted into Co nanoparticles to create a space charge region to accelerate ion transport. Hence, the Co-doped monolayer MoS shows ultrafast lithium ion transport capability in half/full cells. This work presents a novel route for the preparation of monolayer MoS and demonstrates its potential for application in fast-charging lithium-ion batteries.[MediaObject not available: see fulltext.]

关键词
相关链接[Scopus记录]
收录类别
SCI ; EI
语种
英语
学校署名
第一 ; 通讯
资助项目
Shenzhen Key Laboratory of Advanced Energy Storage[ZDSYS20220401141000001] ; Research Grants Council of the Hong Kong Special Administrative Region, China[R6005-20]
WOS研究方向
Science & Technology - Other Topics ; Materials Science ; Physics
WOS类目
Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary ; Physics, Applied
WOS记录号
WOS:001034799100001
出版者
EI入藏号
20231413843512
EI主题词
Anodes ; Capacitance ; Charging (batteries) ; Cobalt ; Electronic structure ; Electrostatics ; Fabrication ; Ions ; Layered semiconductors ; Lithium-ion batteries ; Molybdenum compounds ; Monolayers ; Nanoparticles ; Sulfur compounds ; Surface reactions ; Van der Waals forces
EI分类号
Nonferrous Metals and Alloys excluding Alkali and Alkaline Earth Metals:549.3 ; Electricity: Basic Concepts and Phenomena:701.1 ; Secondary Batteries:702.1.2 ; Semiconducting Materials:712.1 ; Electron Tubes:714.1 ; Nanotechnology:761 ; Physical Chemistry:801.4 ; Chemical Reactions:802.2 ; Atomic and Molecular Physics:931.3 ; Solid State Physics:933
Scopus记录号
2-s2.0-85151432284
来源库
Scopus
引用统计
被引频次[WOS]:28
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/524077
专题工学院_机械与能源工程系
工学院_碳中和能源研究院
作者单位
Shenzhen Key Laboratory of Advanced Energy Storage,Department of Mechanical and Energy Engineering,SUSTech Energy Institute for Carbon Neutrality,Southern University of Science and Technology,Shenzhen,518055,China
第一作者单位机械与能源工程系;  碳中和能源研究院
通讯作者单位机械与能源工程系;  碳中和能源研究院
第一作者的第一单位机械与能源工程系;  碳中和能源研究院
推荐引用方式
GB/T 7714
Han,Meisheng,Mu,Yongbiao,Guo,Jincong,et al. Monolayer MoS2 Fabricated by In Situ Construction of Interlayer Electrostatic Repulsion Enables Ultrafast Ion Transport in Lithium-Ion Batteries[J]. Nano-Micro Letters,2023,15(1).
APA
Han,Meisheng,Mu,Yongbiao,Guo,Jincong,Wei,Lei,Zeng,Lin,&Zhao,Tianshou.(2023).Monolayer MoS2 Fabricated by In Situ Construction of Interlayer Electrostatic Repulsion Enables Ultrafast Ion Transport in Lithium-Ion Batteries.Nano-Micro Letters,15(1).
MLA
Han,Meisheng,et al."Monolayer MoS2 Fabricated by In Situ Construction of Interlayer Electrostatic Repulsion Enables Ultrafast Ion Transport in Lithium-Ion Batteries".Nano-Micro Letters 15.1(2023).
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