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  A High-Energy Tellurium Redox-Amphoteric Conversion Cathode Chemistry for Aqueous Zinc Batteries

Du, J., Zhao, Y., Chu, X., Wang, G., Neumann, C., Xu, H., et al. (2024). A High-Energy Tellurium Redox-Amphoteric Conversion Cathode Chemistry for Aqueous Zinc Batteries. Advanced Materials. doi:10.1002/adma.202313621.

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Advanced Materials-2024-Du.pdf (Publisher version), 3MB
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Advanced Materials-2024-Du.pdf
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2024
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https://doi.org/10.1002/adma.202313621 (Publisher version)
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 Creators:
Du, Jingwei1, Author
Zhao, Yirong1, Author
Chu, Xingyuan1, Author
Wang, Gang1, Author
Neumann, Christof1, Author
Xu, Hao1, Author
Li, Xiaodong2, Author                 
Loeffler, Markus1, Author
Lu, Qiongqiong1, Author
Zhang, Jiaxu1, Author
Li, Dongqi1, Author
Zou, Jianxin1, Author
Mikhailova, Daria1, Author
Turchanin, Andrey1, Author
Feng, Xinliang2, Author                 
Yu, Minghao1, Author
Affiliations:
1external, ou_persistent22              
2Department of Synthetic Materials and Functional Devices (SMFD), Max Planck Institute of Microstructure Physics, Max Planck Society, ou_3316580              

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 Abstract: Rechargeable aqueous zinc batteries are potential candidates for sustainable energy storage systems at a grid scale, owing to their high safety and low cost. However, the existing cathode chemistries exhibit restricted energy density, which hinders their extensive applications. Here, a tellurium redox-amphoteric conversion cathode chemistry is presented for aqueous zinc batteries, which delivers a specific capacity of 1223.9 mAh gTe−1 and a high energy density of 1028.0 Wh kgTe−1. A highly concentrated electrolyte (30 mol kg−1 ZnCl2) is revealed crucial for initiating the Te redox-amphoteric conversion as it suppresses the H2O reactivity and inhibits undesirable hydrolysis of the Te4+ product. By carrying out multiple operando/ex situ characterizations, the reversible six-electron Te2−/Te0/Te4+ conversion with TeCl4 is identified as the fully charged product and ZnTe as the fully discharged product. This finding not only enriches the conversion-type battery chemistries but also establishes a critical step in exploring redox-amphoteric materials for aqueous zinc batteries and beyond.

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 Dates: 2024-02-05
 Publication Status: Published online
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 Identifiers: ISI: 001160308100001
DOI: 10.1002/adma.202313621
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Title: Advanced Materials
  Abbreviation : Adv. Mater.
Source Genre: Journal
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Publ. Info: Weinheim : Wiley-VCH
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: - Identifier: ISSN: 0935-9648
CoNE: https://pure.mpg.de/cone/journals/resource/954925570855