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Enhanced Cyclability of Lithium Metal Anodes Enabled by Anti-aggregation of Lithiophilic Seeds.

Jingjie SunYong ChengHehe ZhangXiaolin YanZhefei SunWeibin YeWangqin LiMingyue ZhangHaowen GaoJiajia HanDong-Liang PengYong YangMing-Sheng Wang
Published in: Nano letters (2022)
Constructing 3D skeletons modified with lithiophilic seeds has proven effective in achieving dendrite-free lithium metal anodes. However, these lithiophilic seeds are mostly alloy- or conversion-type materials, and they tend to aggregate and redistribute during cycling, resulting in the failure of regulating Li deposition. Herein, we address this crucial but long-neglected issue by using intercalation-type lithiophilic seeds, which enable antiaggregation owing to their negligible volume expansion and high electrochemical stability against Li. To exemplify this, a 3D carbon-based host is built, in which ultrafine TiO 2 seeds are uniformly embedded in nitrogen-doped hollow porous carbon spheres (N-HPCSs). The TiO 2 @N-HPCSs electrode exhibits superior Coulombic efficiency, high-rate capability, and long-term stability when evaluated as compertitive anodes for Li metal batteries. Furthermore, the superiority of intercalation-type seeds is comprehensively revealed through controlled experiments by various in situ/ex situ electron and optical microscopies, which highlights the excellent structural stability and lithiophilicity of TiO 2 nanoseeds upon repeated cycling.
Keyphrases
  • ion batteries
  • solid state
  • quantum dots
  • high resolution
  • gold nanoparticles
  • ionic liquid
  • highly efficient
  • air pollution