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Lithium metal batteries for high energy density: Fundamental electrochemistry and challenges

Journal

JOURNAL OF ENERGY CHEMISTRY
Volume 59, Issue -, Pages 666-687

Publisher

ELSEVIER
DOI: 10.1016/j.jechem.2020.11.034

Keywords

Metallic lithium anode; Energy density; Dendrite growth; Optimization procedures; Pouch cells

Funding

  1. National Natural Science Foundation of China [51804290, 22075025]
  2. Beijing Natural Science Foundation [L182023]
  3. Science and Technology Project of Global Energy Interconnection Research Institute Co. Ltd. [SGGR0000WLJS1900858]
  4. Beijing Institute of Technology Research Fund Program for Young Scholars [2019CX04092]

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The dependence on portable devices and electric vehicles has led to a growing awareness of energy storage systems with high energy density, leading to a revival of interest in lithium metal batteries (LMBs). However, the growth of lithium dendrite during the electro-chemical process presents challenges for LMBs application, limiting Coulombic efficiency and causing safety issues. Understanding the mechanisms of lithium nucleation and dendrite growth is essential for addressing these challenges.
The dependence on portable devices and electrical vehicles has triggered the awareness on the energy storage systems with ever-growing energy density. Lithium metal batteries (LMBs) has revived and attracted considerable attention due to its high volumetric (2046 mAh cm(-3)), gravimetric specific capacity (3862 mAh g(-1)) and the lowest reduction potential (-3.04 V vs. SHE.). However, during the electro-chemical process of lithium anode, the growth of lithium dendrite constitutes the biggest stumbling block on the road to LMBs application. The undesirable dendrite not only limit the Coulombic efficiency (CE) of LMBs, but also cause thermal runaway and other safety issues due to short-circuits. Understanding the mechanisms of lithium nucleation and dendrite growth provides insights to solve these problems. Herein, we summarize the electrochemical models that inherently describe the lithium nucleation and dendrite growth, such as the thermodynamic, electrodeposition kinetics, internal stress, and interface transmission models. Essential parameters of temperature, current density, internal stress and interfacial Li+ flux are focused. To improve the LMBs performance, state-of-the-art optimization procedures have been developed and systematically illustrated with the intrinsic regulation principles for better lithium anode stability, including electrolyte optimization, artificial interface layers, three-dimensional hosts, external field, etc. Towards practical applications of LMBs, the current development of pouch cell LMBs have been further introduced with different assembly systems and fading mechanism. However, challenges and obstacles still exist for the development of LMBs, such as in-depth understanding and in-situ observation of dendrite growth, the surface protection under extreme condition and the self-healing of solid electrolyte interface. (C) 2020 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

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