Mechanically Interlocked Interphase with Energy Dissipation and Fast Li-Ion Transport for High-Capacity Lithium Metal Batteries.

Shi, Zhangqin; Wang, Yongming; Yue, Xinyang; Zhao, Jun; Fang, Mingming; Liu, Jijiang; Chen, Yuanmao; Dong, Yongteng et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Constructing an artificial solid electrolyte interphase (ASEI) on Li metal anodes (LMAs) is a potential strategy for addressing the dendrite issues. However, the mechanical fatigue of the ASEI caused by stress accumulation under the repeated deformation from the Li plating/stripping is not taken seriously. Herein, this work introduces a mechanically interlocked [an]daisy chain network (<sup>DC</sup>MIN) into the ASEI to stabilize the Li metal/ASEI interface by combining the functions of energy dissipation and fast Li-ion transport. The <sup>DC</sup>MIN featured by large-range molecular motions is cross-linked via efficient thiol-ene click chemistry; thus, the <sup>DC</sup>MIN has flexibility and excellent mechanical properties. As an ASEI, the crown ether units in <sup>DC</sup>MIN not only interact with the dialkylammonium of a flexible chain, forming the energy dissipation behavior but also coordinate with Li ion to support the fast Li-ion transport in <sup>DC</sup>MIN. Therefore, a stable 2800 h-symmetrical cycling (1 mA cm<sup>-2</sup>) and an excellent 5 C-rate (full cell with LiFePO<sub>4</sub>) performance are achieved by <sup>DC</sup>MIN-based ASEI. Furthermore, the 1-Ah pouch cell (LiNi<sub>0.88</sub>Co<sub>0.09</sub>Mn<sub>0.03</sub>O<sub>2</sub> cathode) with <sup>DC</sup>MIN-coated LMA exhibits improved capacity retention (88%) relative to the Control. The molecular design of <sup>DC</sup>MIN provides new insights into the optimization of an ASEI for high-energy LMAs.