Journal of Physical Chemistry C | 2019

Damage Formation in Sn Film Anodes of Na-Ion Batteries

 
 
 
 
 
 
 

Abstract


Sn anodes for Na-ion batteries exhibit a promising initial capacity of 847 mAh g–1, which however, cannot be retained throughout continuous cycling due to the 420% volume changes that Sn experiences during sodiation. Previous experimental studies suggest that fracture does not occur in the submicron Sn particles during the formation of Na-Sn alloys; however, such colossal volume changes must result in microstructural damage. In the present work, the damage mechanisms during sodiation are isolated and accentuated by employing a Sn thick film of 0.5 mm as the anode. This\xa0simplified planar geometry allows to dispense with the influence of the binder and carbon additives that are required in porous electrodes. Post-mortem electron microscopy revealed new deformation mechanisms for anode materials, as multiple whiskers nucleated on the surface of the Sn, whereas pores formed within the Sn (over the Na-ion penetration distance) after electrochemical cycling. These mechanisms were in addition to the dry lake-bed...

Volume 123
Pages 15244-15250
DOI 10.1021/ACS.JPCC.9B02004
Language English
Journal Journal of Physical Chemistry C

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