中文版 | English
Title

Electron-Transfer Mechanism in P2-Na0.67MnO2/Graphene Electrodes: Experimental and First-Principles Investigations

Author
Corresponding AuthorHuang, Li; Hu, Chenguo
Publication Years
2023-02-13
DOI
Source Title
EISSN
2574-0962
Volume6Pages:1723-1730
Abstract
The wide application of P2-Na0.67MnO2 as electrode materials is full of challenges, including poor electric conductivity, rate capability, and structural transition. Na0.67MnO2 composited with conductor materials is a universal approach to tackling these issues. However, the electron-transfer mechanism in these composites is not clearly understood. Herein, we prepare Na0.67MnO2 wrapped by graphene oxide rolls (GO/Na0.67MnO2). Electrochemical impedance spectroscopy (EIS) and density functional theory (DFT) calculations suggest a faster diffusion of sodium ions and better electric conductivity in the GO/Na0.67MnO2 system. Additionally, calculated migration barriers indicate that the graphene-Na0.67MnO2 layer can store a large amount of sodium ions with a small ion diffusion barrier of 0.416 eV, confirming the superior rate performance of GO/Na0.67MnO2 than that in pure Na0.67MnO2 at large current densities. These improvements are credited to the massive amount of electrons transferred from graphene to Na0.67MnO2. Importantly, we propose that the electron-transfer mechanism is closely related to the work function of materials. For GO/Na0.67MnO2, graphene with a higher Fermi level and lower work function provides a large number of electrons to Na0.67MnO2, increasing the Fermi level of Na0.67MnO2 and thus enhancing ion diffusion capability and electric conductivity. Our work gives a comprehensive understanding of the electron-transfer mechanism of GO/Na0.67MnO2, and it provides a feasible scheme to study the electrochemical properties of Na0.67MnO2 composites.
© 2023 American Chemical Society.
Indexed By
EI ; SCI
Language
English
SUSTech Authorship
Corresponding
Funding Project
This work was supported by the National Key R & D Project from the Minister of Science and Technology (2021YFA1201602) and the National Natural Science Foundation of China (NSFC) (U21A20147). The authors thank the Analytical and Testing Center of Chongqing University for some electrode preparations and material characterizations. The work at SUSTech was supported by the Shenzhen Basic Research Fund under Grant No. JCYJ20180504165817769. The computer time was supported by the Center for Computational Science and Engineering of the Southern University of Science and Technology.
WOS Accession No
WOS:000925113000001
Publisher
EI Accession Number
20230413446427
EI Keywords
Copper ; Density functional theory ; Diffusion barriers ; Electric conductivity ; Electrochemical impedance spectroscopy ; Electrodes ; Electron transitions ; Fermi level ; Graphene ; Manganese compounds ; Metal ions ; Sodium ; Sodium compounds ; Sodium-ion batteries
ESI Classification Code
Metallurgy:531.1 ; Copper:544.1 ; Alkali Metals:549.1 ; Electricity: Basic Concepts and Phenomena:701.1 ; Secondary Batteries:702.1.2 ; Nanotechnology:761 ; Chemistry:801 ; Chemical Products Generally:804 ; Probability Theory:922.1 ; Atomic and Molecular Physics:931.3 ; Quantum Theory; Quantum Mechanics:931.4
Data Source
EV Compendex
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/519745
DepartmentAcademy for Advanced Interdisciplinary Studies
理学院_物理系
Affiliation
1.Department of Applied Physics, Chongqing University, Chongqing; 400044, China
2.Guangdong Provincial Key Laboratory of Energy Materials for Electric Power, Academy for Advanced Interdisciplinary Studies, Southern University of Science and Technology, Shenzhen; 518055, China
3.Department of Physics, Southern University of Science and Technology, Shenzhen; 518055, China
Corresponding Author AffilicationAcademy for Advanced Interdisciplinary Studies;  Department of Physics
Recommended Citation
GB/T 7714
Wan, Jing,Zhu, Haiyan,Ji, Peiyuan,et al. Electron-Transfer Mechanism in P2-Na0.67MnO2/Graphene Electrodes: Experimental and First-Principles Investigations[J]. ACS Applied Energy Materials,2023,6:1723-1730.
APA
Wan, Jing,Zhu, Haiyan,Ji, Peiyuan,Han, Xiangyu,Huang, Li,&Hu, Chenguo.(2023).Electron-Transfer Mechanism in P2-Na0.67MnO2/Graphene Electrodes: Experimental and First-Principles Investigations.ACS Applied Energy Materials,6,1723-1730.
MLA
Wan, Jing,et al."Electron-Transfer Mechanism in P2-Na0.67MnO2/Graphene Electrodes: Experimental and First-Principles Investigations".ACS Applied Energy Materials 6(2023):1723-1730.
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