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Microstructure Evolution and Conversion Mechanism of Mn3O4 Under Electrochemical Cyclings

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Probing the microstructure evolution, phase change, and fundamental conversion mechanism of anodes for lithium ion batteries (LIBs) during lithiation–delithiation cycles is important to gain insights into understanding how the electrode… Click to show full abstract

Probing the microstructure evolution, phase change, and fundamental conversion mechanism of anodes for lithium ion batteries (LIBs) during lithiation–delithiation cycles is important to gain insights into understanding how the electrode works and thus how it can be improved. The electrochemical reaction and phase evolution of Mn3O4 during lithiation–delithiation cycles remain unknown. To observe the real-time electrochemical behaviors of Mn3O4 during lithiation–delithiation cycles, a nanosized LIB was constructed inside a transmission electron microscope (TEM) using an individual Mn3O4/graphene moiety as the anode. Upon the first lithiation, Mn3O4 nanoparticles are lithiated into the crystallized Mn nanograins embedded within the Li2O matrix. However, Mn and Li2O cannot be recovered to the original Mn3O4 phase but to MnO after the first full delithiation, which results in an irreversible phase transformation. Such incomplete conversion reaction accounts for the huge capacity fading during the first cycle ...

Keywords: conversion mechanism; microstructure evolution; evolution; conversion

Journal Title: Journal of Physical Chemistry C
Year Published: 2018

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