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Understanding and Preventing Dendrite Growth in Lithium Metal Batteries. | LitMetric

Understanding and Preventing Dendrite Growth in Lithium Metal Batteries.

ACS Appl Mater Interfaces

Department of Materials Science and Engineering, National University of Singapore, 117576, Singapore.

Published: July 2021

AI Article Synopsis

  • Dendrite growth in lithium (Li) metal anodes is a major barrier to their effectiveness, traditionally mitigated through interface layers or surface modifications.
  • A study introduces a three-dimensional (3D) composite Li anode made from carbonized wood and tin, showing improved electrochemical performance and stability under high current densities compared to conventional Li foils.
  • The 3D structure enhances surface diffusion by increasing surface area and creating nanoscale separation walls, while tin alloying helps achieve more even lithium plating by generating abundant nucleation centers, with additional suitable alloying elements identified for future applications.

Article Abstract

Dendrite growth under large current density is the key intrinsic issue impeding a wider application of Li metal anodes. Previous studies mainly focused on avoiding dendrite growth by building an additional interface layer or surface modification. However, the mechanism and factors affecting dendrite growth for Li metal anodes are still unclear. Herein, we analyze the causes for dendrite growth, which leads us to suggest three-dimensional (3D) metal anodes as a promising approach to overcome the dendrite issues. A 3D composite Li anode was prepared from renewable carbonized wood doped with Sn to demonstrate its superior electrochemical performance compared with Li foils. The anode was cycled at various current densities from 0.1 to 10 mA cm for five cycles at each current density, displaying low overpotential compared with conventional Li foils. Long galvanostatic cycling at 1 mA cm for 1000 h and at 2 mA cm for 500 h was achieved without dendrite growth. Further analysis reveals that the 3D structure facilitates surface diffusion by increasing the surface area from 5.23 × 10 m g (Li foil) to 2.64 m g and by creating nanoscale separation walls. The tin alloying effectively prevents non-uniform lithium plating by creating abundant nucleation centers. Additionally, suitable alloying elements for a wider range of 3D Li anodes have been identified from density functional theory calculations.

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Source
http://dx.doi.org/10.1021/acsami.1c08268DOI Listing

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