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Towards High‐Safe Lithium Metal Anodes: Suppressing Lithium Dendrites via Tuning Surface Energy

Advanced Science · 2016 · Vol. 4(1) · pp. 1600168–1600168
Dong WangWei ZhangWeitao ZhengXiaoqiang CuiTeófilo RojoQiang Zhang

Abstract

The formation of lithium dendrites induces the notorious safety issue and poor cycling life of energy storage devices, such as lithium-sulfur and lithium-air batteries. We propose a surface energy model to describe the complex interface between the lithium anode and electrolyte. A universal strategy of hindering formation of lithium dendrites via tuning surface energy of the relevant thin film growth is suggested. The merit of the novel motif lies not only fundamentally a perfect correlation between electrochemistry and thin film fields, but also significantly promotes larger-scale application of lithium-sulfur and lithium-air batteries, as well as other metal batteries (e.g., Zn, Na, K, Cu, Ag, and Sn).

Advanced Battery Materials and TechnologiesAdvancements in Battery MaterialsAdvanced battery technologies researchAnodeElectrolyteLithium (medication)ElectrochemistryLithium metalMaterials scienceThin filmMetalEnergy storageChemical engineering
Citations
536
FWCI
26.85
field-weighted impact
References
101
Percentile
100%
vs. same field & year
Citations per year
References
Lithium metal anodes for rechargeable batteries
Energy & Environmental Science · 2013 · 4,565 citations
Lithium insertion into manganese spinels
Materials Research Bulletin · 1983 · 1,722 citations
The Impact of Elastic Deformation on Deposition Kinetics at Lithium/Polymer Interfaces
Journal of The Electrochemical Society · 2005 · 1,623 citations
Role of LiNO3 in rechargeable lithium/sulfur battery
Electrochimica Acta · 2012 · 926 citations
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