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An ultrastable lithium metal anode enabled by designed metal fluoride spansules.


ABSTRACT: The lithium metal anode (LMA) is considered as a promising star for next-generation high-energy density batteries but is still hampered by the severe growth of uncontrollable lithium dendrites. Here, we design "spansules" made of NaMg(Mn)F3@C core@shell microstructures as the matrix for the LMA, which can offer a long-lasting release of functional ions into the electrolyte. By the assistance of cryogenic transmission electron microscopy, we reveal that an in situ-formed metal layer and a unique LiF-involved bilayer structure on the Li/electrolyte interface would be beneficial for effectively suppressing the growth of lithium dendrites. As a result, the spansule-modified anode affords a high Coulombic efficiency of 98% for over 1000 cycles at a current density of 2 mA cm-2, which is the most stable LMA reported so far. When coupling this anode with the Li[Ni0.8Co0.1Mn0.1]O2 cathode, the practical full cell further exhibits highly improved capacity retention after 500 cycles.

SUBMITTER: Yuan H 

PROVIDER: S-EPMC7060059 | biostudies-literature | 2020 Mar

REPOSITORIES: biostudies-literature

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An ultrastable lithium metal anode enabled by designed metal fluoride spansules.

Yuan Huadong H   Nai Jianwei J   Tian He H   Ju Zhijin Z   Zhang Wenkui W   Liu Yujing Y   Tao Xinyong X   Lou Xiong Wen David XWD  

Science advances 20200306 10


The lithium metal anode (LMA) is considered as a promising star for next-generation high-energy density batteries but is still hampered by the severe growth of uncontrollable lithium dendrites. Here, we design "spansules" made of NaMg(Mn)F<sub>3</sub>@C core@shell microstructures as the matrix for the LMA, which can offer a long-lasting release of functional ions into the electrolyte. By the assistance of cryogenic transmission electron microscopy, we reveal that an in situ-formed metal layer an  ...[more]

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