A "flotation" strategy for tailoring the solid electrolyte interphase on 3D composite Li anodes
In the realm of Li metal batteries, the deployment of three-dimensional (3D) composite Li metal anodes has emerged as a significant strategy for mitigating dendrite growth. However, the inadequate Li-atom affinity of 3D hosts and the heterogeneous solid electrolyte interphase (SEI) layer on 3D compo...
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Veröffentlicht in: | Inorganic chemistry frontiers 2024-06, Vol.11 (13), p.3765-3776 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | In the realm of Li metal batteries, the deployment of three-dimensional (3D) composite Li metal anodes has emerged as a significant strategy for mitigating dendrite growth. However, the inadequate Li-atom affinity of 3D hosts and the heterogeneous solid electrolyte interphase (SEI) layer on 3D composite Li anodes lead to unsatisfactory electrochemical performance. A promising strategy to curtail dendrite growth is to construct a 3D composite Li anode with a lithophilic 3D structure and a tailored SEI. Herein, we develop a novel "flotation" strategy to construct these 3D composite Li metal anodes through a simple one-step method. During the molten Li injection process, lithophilic ZnO directs molten Li into the host, whereas ZnF
2
, ZnP
xx
, or ZnS reacts with Li to form relatively less lithophilic LiF, Li
3
P, or Li
2
S which "floats" to the surface to participate in the formation of a LiF-, Li
3
P-, or Li
2
S-rich SEI on the anodes. These anodes demonstrate a lithophilic 3D structure and a robust SEI, thereby stabilizing the anode-electrolyte interface. Consequently, these anodes demonstrate excellent stability with enhanced interface kinetics. When integrated into full cells with LiFePO
4
(LFP) cathodes, these anodes exhibit superior electrochemical performance. These findings underscore the efficacy of this strategy in achieving dendrite-free anodes, paving the way for their application in high-energy-density devices.
A simple one-step "flotation" strategy to construct 3D composite Li metal anodes with a lithophilic 3D structure and a tailored SEI for dendrite-free lithium metal anodes. |
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ISSN: | 2052-1553 2052-1545 2052-1553 |
DOI: | 10.1039/d4qi00632a |