Electronic structure, chemical bonding, and vibronic coupling in Mn-IV/Mn-III mixed valent LixMn2O4 spinels and their effect on the dynamics of intercalated Li: A cluster study using DFT
M. Atanasov et al., Electronic structure, chemical bonding, and vibronic coupling in Mn-IV/Mn-III mixed valent LixMn2O4 spinels and their effect on the dynamics of intercalated Li: A cluster study using DFT, J AM CHEM S, 122(19), 2000, pp. 4718-4728
Density functional theory (DFT) calculations on the (Mn7O14)-O-IV and Mn-II
I/Mn-IV mixed valent Mn7O14- clusters are reported and used to characterize
the Mn-O bonding in LixMn2O4 spinel. A recipe is proposed of how to extrac
t from calculations on clusters electronic hopping and charge transfer (CT)
energy parameters and to use them in a semiempirical (Hubbard type) Hamito
nian which simultaneously accounts for electronic correlation and translati
onal symmetry. The first application of this approach to Mn2O4 shows that,
in contrast with conventional band calculations, the 3d electrons of Mn are
rather localized. Vibronic coupling due to the 2t(2g)(3)2e(g)(1) configura
tion of Mn-III with the alpha(1g) and the Jahn-Teller(JT) active epsilon(g)
modes is analyzed using DFT calculations of the mixed valent Mn7O14- clust
er and is found to lead to a lengthening of the Mn-O bond and to tetragonal
ly elongated octahedra accompanied by an appreciable stabilization energy(-
0.445 eV), Vibronic coupling and electron hopping energies obtained from th
e DFT calculation are used to set up a simple model of small polaron for th
e Mn-III/Mn-IV spinels. The calculated energy barrier of electron transfer
(0.34 eV, static JT-effect, dr ground state) agrees well with the one deduc
ed from polaronic conductivity data on LiMn2O4 (0.4 eV). In the case of an
energetic equivalency of the d(z2) and d(x2)-(y2) orbitals (such as LixMn2O
4, x < 1, dynamic JT-effect), this model provides the possibility for elect
ron transfer with a very low activation energy. The electronic transfer fro
m Mn-III to Mn-IV in LixMn2O4 (0 < x much less than 1) is predicted to be f
ast and thus expected to assist the diffusion of Li+ through the interstiti
al spinel framework, The interaction of Li+ with the electrochemically acti
ve 2e(g)(Mn-III) electron does screen Li+ from large variation of the Madel
ung potential along its path from the octahedral 16c to the tetrahedral sa
site and thus lowers the potential barrier for its diffusion through the sp
inel lattice.