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Opportunities of Aqueous Manganese-Based Batteries with Deposition and Stripping Chemistry

Journal Article · · Advanced Energy Materials
 [1];  [1];  [1];  [2];  [2];  [3];  [4];  [1]
  1. Univ. of Science and Technology of China, Hefei (China)
  2. Univ. of Adelaide, SA (Australia)
  3. King Abdullah Univ. of Science and Technology (KAUST), Thuwal (Saudi Arabia)
  4. Stanford Univ., CA (United States); SLAC National Accelerator Lab., Menlo Park, CA (United States). Stanford Institute for Materials and Energy Science (SIMES)
Rechargeable aqueous manganese-based batteries have been attracting significant attention owing to their advantages of low cost, high safety, and ease of manufacturing, which are promising attributes for grid-scale energy storage applications. However, most traditional manganese-based batteries with solid-state conversion and intercalation reactions suffer from low capacity and poor long-term cycling stability. The recent novel storage mechanism based on cathode Mn2+/MnO2 deposition/stripping chemistry has fundamentally tackled these issues, enabling a new generation of manganese-based batteries with superior electrochemical performance. Here, the recent advances in aqueous manganese-based batteries with the Mn2+/MnO2 deposition/stripping chemistry are reviewed. Furthermore, a summary of the development of manganese-based batteries with different storage mechanisms is provided and new opportunities for the emerging Mn2+/MnO2 chemistry in the latest generation are highlighted. Then, the current understanding of the Mn2+/MnO2 charge storage mechanism and its potential in manganese-based batteries for large-scale energy storage applications is presented. Moreover, insights into opportunities and future directions for manganese-based batteries with the Mn2+/MnO2 chemistry are proposed.
Research Organization:
SLAC National Accelerator Laboratory (SLAC), Menlo Park, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES); University of Science and Technology of China (USTC); KAUST
Grant/Contract Number:
AC02-76SF00515
OSTI ID:
1768031
Journal Information:
Advanced Energy Materials, Journal Name: Advanced Energy Materials Journal Issue: 5 Vol. 11; ISSN 1614-6832
Publisher:
WileyCopyright Statement
Country of Publication:
United States
Language:
English

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