Unveiling solvation structure and desolvation dynamics of hybrid electrolytes for ultralong cyclability and facile kinetics of Zn-Al alloy anodes

Despite the high theoretical capacity and natural abundance of Al metal anodes, the reversible and fast multivalent storage of Al 3+ ions remains challenging because their large charge density leads to strong electrostatic interactions with other components and sluggish kinetics. Herein, we report t...

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Veröffentlicht in:Energy & environmental science 2022-11, Vol.15 (11), p.4572-4583
Hauptverfasser: Dou, Qingyun, Yao, Nan, Pang, Wei Kong, Park, Yeonju, Xiong, Peixun, Han, Xiaotong, Rana, Harpalsinh H, Chen, Xiang, Fu, Zhong-Heng, Thomsen, Lars, Cowie, Bruce, Kang, Yingbo, Liu, Qin, Min, Dong Hyun, Jung, Young Mee, Guo, Zaiping, Zhang, Qiang, Park, Ho Seok
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Sprache:eng
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Zusammenfassung:Despite the high theoretical capacity and natural abundance of Al metal anodes, the reversible and fast multivalent storage of Al 3+ ions remains challenging because their large charge density leads to strong electrostatic interactions with other components and sluggish kinetics. Herein, we report the record-high plating/stripping time (>8000 h) and high rate capability of Zn-Al alloy anodes in Al 3+ -containing hybrid electrolytes. The more reversible Al deposition on Zn in nitrile-based hybrid electrolyte than carbonate- and amide-based hybrid and aqueous electrolytes is attributed to weak Al 3+ -solvent interactions and fast Al 3+ transfer kinetics. In particular, these electrochemical behaviors of nitrile-based electrolyte originate from a unique solvation structure, the interrelation among H 2 O, organic solvents, and Al 3+ , and the conformational change of bound/free solvents upon desolvation, as elaborated via theoretical simulations, two-dimensional infrared correlation spectroscopy, and other characterizations. The superiority of this hybrid electrolyte was confirmed by achieving a high specific capacity (183 mA h g −1 and 1.08 mA h cm −2 ) and long cycling of >5000 cycles of full cells integrating Zn-Al alloy anodes (25 μm) with vanadium dioxide/carbon nanotubes (8 mg cm −2 ) and activated carbon (10 mg cm −2 ) cathodes, respectively, which considerably exceed those of Al-based full cells. Weak Al 3+ -solvent interactions and facile desolvation for ultralong stability of Zn-Al alloy anodes.
ISSN:1754-5692
1754-5706
DOI:10.1039/d2ee02453e