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Ordered planar plating/stripping enables deep cycling zinc metal batteries.


ABSTRACT: Metal anodes are emerging as culminating solutions for the development of energy-dense batteries in either aprotic, aqueous, or solid battery configurations. However, unlike traditional intercalation electrodes, the low utilization of "hostless" metal anodes due to the intrinsically disordered plating/stripping impedes their practical applications. Herein, we report ordered planar plating/stripping in a bulk zinc (Zn) anode to achieve an extremely high depth of discharge exceeding 90% with negligible thickness fluctuation and long-term stable cycling. The Zn can be plated/stripped with (0001)Zn preferential orientation throughout the consecutive charge/discharge process, assisted by a self-assembled supramolecular bilayer at the Zn anode-electrolyte interface. Through real-time tracking of the Zn atoms migration, we reveal that the ordered planar plating/stripping is driven by the construction of in-plane Zn─N bindings and the gradient energy landscape at the reaction fronts. The breakthrough results provide alternative insights into the ordered plating/stripping of metal anodes toward rechargeable energy-dense batteries.

SUBMITTER: Chen S 

PROVIDER: S-EPMC10917354 | biostudies-literature | 2024 Mar

REPOSITORIES: biostudies-literature

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Ordered planar plating/stripping enables deep cycling zinc metal batteries.

Chen Shuang S   Xia Yufan Y   Zeng Ran R   Luo Zhen Z   Wu Xingxing X   Hu Xuzhi X   Lu Jian J   Gazit Ehud E   Pan Hongge H   Hong Zijian Z   Yan Mi M   Tao Kai K   Jiang Yinzhu Y  

Science advances 20240306 10


Metal anodes are emerging as culminating solutions for the development of energy-dense batteries in either aprotic, aqueous, or solid battery configurations. However, unlike traditional intercalation electrodes, the low utilization of "hostless" metal anodes due to the intrinsically disordered plating/stripping impedes their practical applications. Herein, we report ordered planar plating/stripping in a bulk zinc (Zn) anode to achieve an extremely high depth of discharge exceeding 90% with negli  ...[more]

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