纳米金刚石
锂(药物)
法拉第效率
阳极
电解质
材料科学
电化学
磷酸钒锂电池
枝晶(数学)
金属锂
化学工程
电镀(地质)
纳米技术
化学
电极
冶金
钻石
工程类
物理化学
内分泌学
几何学
地质学
医学
数学
地球物理学
作者
Xin‐Bing Cheng,Meng‐Qiang Zhao,Chi Chen,Amanda Pentecost,Kathleen Maleski,Tyler S. Mathis,Xue‐Qiang Zhang,Qiang Zhang,Jianjun Jiang,Yury Gogotsi
标识
DOI:10.1038/s41467-017-00519-2
摘要
Abstract Lithium metal has been regarded as the future anode material for high-energy-density rechargeable batteries due to its favorable combination of negative electrochemical potential and high theoretical capacity. However, uncontrolled lithium deposition during lithium plating/stripping results in low Coulombic efficiency and severe safety hazards. Herein, we report that nanodiamonds work as an electrolyte additive to co-deposit with lithium ions and produce dendrite-free lithium deposits. First-principles calculations indicate that lithium prefers to adsorb onto nanodiamond surfaces with a low diffusion energy barrier, leading to uniformly deposited lithium arrays. The uniform lithium deposition morphology renders enhanced electrochemical cycling performance. The nanodiamond-modified electrolyte can lead to a stable cycling of lithium | lithium symmetrical cells up to 150 and 200 h at 2.0 and 1.0 mA cm –2 , respectively. The nanodiamond co-deposition can significantly alter the lithium plating behavior, affording a promising route to suppress lithium dendrite growth in lithium metal-based batteries.
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