中文版 | English
Title

A Static Tin-Manganese Battery with 30000-Cycle Lifespan Based on Stabilized Mn3+/Mn2+ Redox Chemistry

Author
Corresponding AuthorXing, Wei; Zhi, Chunyi; Li, Hongfei
Publication Years
2023-03-14
DOI
Source Title
ISSN
1936-0851
EISSN
1936-086X
Volume17Pages:5083-5094
Abstract
High-potential Mn3+/Mn2+ redox couple (>1.3 V vs SHE) in a static battery system is rarely reported due to the shuttle and disproportionation of Mn3+ in aqueous solutions. Herein, based on reversible stripping/plating of the Sn anode and stabilized Mn2+/Mn3+ redox couple in the cathode, an aqueous Sn-Mn full battery is established in acidic electrolytes. Sn anode exhibits high deposition efficiency, low polarization, and excellent stability in acidic electrolytes. With the help of H+ and a complexing agent, a reversible conversion between Mn2+ and Mn3+ ions takes place on the graphite surface. Pyrophosphate ligand is initially employed to form a protective layer through a complexation process with Sn4+ on the electrode surface, effectively preventing Mn3+ from disproportionation and hindering the uncontrollable diffusion of Mn3+ to electrolytes. Benefiting from the rational design, the full battery delivers satisfied electrochemical performance including a large capacity (0.45 mAh cm-2 at 5 mA cm-2), high discharge plateau voltage (>1.6 V), excellent rate capability (58% retention from 5 to 30 mA cm-2), and superior cycling stability (no decay after 30 000 cycles). The battery design strategy realizes a robustly stable Mn3+/Mn2+ redox reaction, which broadens research into ultrafast acidic battery systems.
© 2023 American Chemical Society.
Indexed By
EI ; SCI
Language
English
Important Publications
NI Journal Papers
SUSTech Authorship
Corresponding
Funding Project
This work was financially supported by the National Natural Science Foundation of China (21905300, 22005207, 52277229), the Young Taishan Scholars Program of Shandong Province (tsqn202211082), National Key Research and Development of China (2022YFA1503400), Guangdong Basic and Applied Basic Research Foundation (2019A1515110980), and Fundamental Research Funds for the Central Universities (21CX06011A).
WOS Accession No
WOS:000941995800001
Publisher
EI Accession Number
20231013659896
EI Keywords
Binary alloys ; Electric discharges ; Electrolytes ; Manganese ; Manganese alloys ; Redox reactions ; Secondary batteries ; Tin ; Tin alloys
ESI Classification Code
Manganese and Alloys:543.2 ; Tin and Alloys:546.2 ; Electricity: Basic Concepts and Phenomena:701.1 ; Electric Batteries and Fuel Cells:702 ; Secondary Batteries:702.1.2 ; Electron Tubes:714.1 ; Chemical Reactions:802.2 ; Chemical Agents and Basic Industrial Chemicals:803 ; Chemical Products Generally:804
Data Source
EV Compendex
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/519663
DepartmentSchool of System Design and Intelligent Manufacturing
Affiliation
1.School of Materials Science and Engineering, State Key Laboratory of Heavy Oil Processing, China University of Petroleum (East China), Shandong, Qingdao; 266580, China
2.Songshan Lake Materials Laboratory, Guangdong, Dongguan; 523808, China
3.Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong; 999077, Hong Kong
4.School of System Design and Intelligent Manufacturing, Southern University of Science and Technology, Guangdong, Shenzhen; 518055, China
Corresponding Author AffilicationSchool of System Design and Intelligent Manufacturing
Recommended Citation
GB/T 7714
Li, Xuejin,Tang, Yongchao,Han, Cuiping,et al. A Static Tin-Manganese Battery with 30000-Cycle Lifespan Based on Stabilized Mn3+/Mn2+ Redox Chemistry[J]. ACS Nano,2023,17:5083-5094.
APA
Li, Xuejin.,Tang, Yongchao.,Han, Cuiping.,Wei, Zhiquan.,Fan, Haodong.,...&Li, Hongfei.(2023).A Static Tin-Manganese Battery with 30000-Cycle Lifespan Based on Stabilized Mn3+/Mn2+ Redox Chemistry.ACS Nano,17,5083-5094.
MLA
Li, Xuejin,et al."A Static Tin-Manganese Battery with 30000-Cycle Lifespan Based on Stabilized Mn3+/Mn2+ Redox Chemistry".ACS Nano 17(2023):5083-5094.
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