Spinel-structured LiMn 2 O 4 (LMO) is a desirable cathode material for Li-ion
batteries due to its low cost, abundance, and high power capability. However,
LMO suffers from limited cycle life that is triggered by manganese dissolution
into the electrolyte during electrochemical cycling. Here, it is shown that
single-layer graphene coatings suppress manganese dissolution, thus
enhancing the performance and lifetime of LMO cathodes. Relative to lithium
cells with uncoated LMO cathodes, cells with graphene-coated LMO cathodes
provide improved capacity retention with enhanced cycling stability. X-ray
photoelectron spectroscopy reveals that graphene coatings inhibit manganese
depletion from the LMO surface. Additionally, transmission electron
microscopy demonstrates that a stable solid electrolyte interphase is formed
on graphene, which screens the LMO from direct contact with the electrolyte.
Density functional theory calculations provide two mechanisms for the role
of graphene in the suppression of manganese dissolution. First, common
defects in single-layer graphene are found to allow the transport of lithium
while concurrently acting as barriers for manganese diffusion. Second,
graphene can chemically interact with Mn 3+ at the LMO electrode surface,
promoting an oxidation state change to Mn 4+ , which suppresses dissolution.
Revised: August 31, 2015 |
Published: June 24, 2015
Citation
Jaber-Ansari L., K.P. Puntambekar, S. Kim, M. Aykol, L. Luo, J. Wu, and B.D. Myers, et al. 2015.Suppressing Manganese Dissolution from Lithium Manganese Oxide Spinel Cathodes with Single-Layer Graphene.Advanced Energy Materials. doi:10.1002/aenm.201500646