4.8 Review

Progress on Lithium Dendrite Suppression Strategies from the Interior to Exterior by Hierarchical Structure Designs

Journal

SMALL
Volume 16, Issue 26, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202000699

Keywords

hierarchical structural design; Li dendrite suppression; Li metal protection; solid-state electrolytes

Funding

  1. National Natural Science Foundation of China [51672156]
  2. Local Innovative Research Teams Project of Guangdong Pearl River Talents Program [2017BT01N111]
  3. Guangdong special support program [2015TQ01N401]
  4. Guangdong Province Technical Plan Project [2017B010119001, 2017B090907005]
  5. Shenzhen Technical Plan Project [JCYJ20180508152210821, JCYJ20170817161221958, JCYJ20170412170706047, JCYJ20180508152135822]
  6. Shenzhen graphene manufacturing innovation center [201901161513]

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Lithium (Li) metal is promising for high energy density batteries due to its low electrochemical potential (-3.04 V) and high specific capacity (3860 mAh g(-1)). However, the safety issues impede the commercialization of Li anode batteries. In this work, research of hierarchical structure designs for Li anodes to suppress Li dendrite growth and alleviate volume expansion from the interior (by the 3D current collector and host matrix) to the exterior (by the artificial solid electrolyte interphase (SEI), protective layer, separator, and solid state electrolyte) is concluded. The basic principles for achieving Li dendrite and volume expansion free Li anode are summarized. Following these principles, 3D porous current collector and host matrix are designed to suppress the Li dendrite growth from the interior. Second, artificial SEI, the protective layer, and separator as well as solid-state electrolyte are constructed to regulate the distribution of current and control the Li nucleation and deposition homogeneously for suppressing the Li dendrite growth from exterior of Li anode. Ultimately, this work puts forward that it is significant to combine the Li dendrite suppression strategies from the interior to exterior by 3D hierarchical structure designs and Li metal modification to achieve excellent cycling and safety performance of Li metal batteries.

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