TY - JOUR
T1 - Solid state NMR studies of Li2MnO3 and li-rich cathode materials
T2 - Proton insertion, local structure, and voltage fade
AU - Dogan, Fulya
AU - Croy, Jason R.
AU - Balasubramanian, Mahalingam
AU - Slater, Michael D.
AU - Iddir, Hakim
AU - Johnson, Christopher S.
AU - Vaughey, John T.
AU - Key, Baris
N1 - Publisher Copyright:
© 2014 The Electrochemical Society.
PY - 2015
Y1 - 2015
N2 - High energy densities of lithium-rich transition metal oxides cannot be sufficiently maintained on cycling due to high-voltage firstcycle activation and the subsequent structural changes. These changes can be seen as a continuous decrease of the average voltage with cycling, known as voltage fade. Electrochemical and chemical insertion of protons has been reported suggesting that protons generated in the electrolyte could be involved in electrochemical cyclingwhich could play a similar role in the "Li2MnO3 component" of lithium rich transition metal oxides. Here, electrochemical insertion of structural protons, changes in lithium occupancy at various states of charge, and changes in local structure have been investigated via a combination of local probes including solid state NMR, X-ray absorption spectroscopy and first principle calculations. While significant evidence is found for the deposition of non-structural proton-bearing species on electrodes, which accumulate with extensive cycling, structural proton insertion is not found to be a significant process directly effecting voltage fade. The electrochemical activity of disordered Li2MnO3, synthesized at low temperature, is also investigated and its Li removal/insertion properties measured quantitatively with NMR. Major reordering of Li sites and subsequent local structural transitions are observed by NMR and are found to be synchronous with voltage fade.
AB - High energy densities of lithium-rich transition metal oxides cannot be sufficiently maintained on cycling due to high-voltage firstcycle activation and the subsequent structural changes. These changes can be seen as a continuous decrease of the average voltage with cycling, known as voltage fade. Electrochemical and chemical insertion of protons has been reported suggesting that protons generated in the electrolyte could be involved in electrochemical cyclingwhich could play a similar role in the "Li2MnO3 component" of lithium rich transition metal oxides. Here, electrochemical insertion of structural protons, changes in lithium occupancy at various states of charge, and changes in local structure have been investigated via a combination of local probes including solid state NMR, X-ray absorption spectroscopy and first principle calculations. While significant evidence is found for the deposition of non-structural proton-bearing species on electrodes, which accumulate with extensive cycling, structural proton insertion is not found to be a significant process directly effecting voltage fade. The electrochemical activity of disordered Li2MnO3, synthesized at low temperature, is also investigated and its Li removal/insertion properties measured quantitatively with NMR. Major reordering of Li sites and subsequent local structural transitions are observed by NMR and are found to be synchronous with voltage fade.
UR - http://www.scopus.com/inward/record.url?scp=84923263713&partnerID=8YFLogxK
U2 - 10.1149/2.1041501jes
DO - 10.1149/2.1041501jes
M3 - Article
AN - SCOPUS:84923263713
SN - 0013-4651
VL - 162
SP - A235-A243
JO - Journal of the Electrochemical Society
JF - Journal of the Electrochemical Society
IS - 1
ER -