Electronic Structure of Chemically-Prepared LixMn2O4 Determined by Mn X-ray Absorption and Emission Spectroscopies
Craig R. Horne, Uwe Bergmann, M. M. Grush, R. C. C. Perera, D. L. Ederer, T. A. Callcott, Elton J. Cairns, Stephen P. Cramer
Abstract
Craig R. Horne, Uwe Bergmann, M. M. Grush, R. C. C. Perera, D. L. Ederer, T. A. Callcott, Elton J. Cairns, Stephen P. Cramer
Abstract
We have performed Mn K-edge X-ray Absorption and Mn L-edge emission spectroscopies on LiMn 2 O 4, its chemically delithiated and lithiated derivatives (λ-MnO 2 and Li 2 Mn 2 O 4, respectively), and two Mn 3+ spinel model compounds. These experiments were undertaken to understand the associated changes in atomic and electronic structure occurring when LiMn 2 O 4 is used in a rechargeable lithium cell. Subtle changes in the Mn K-edge X-ray absorption near edge structure (XANES) occur upon delithiation that are consistent with literature reports of the oxidation of Mn 3+ to Mn 4+, retention of the cubic phase, and contraction of the spinel lattice. Conversely, when LiMn 2 O 4 is lithiated, the XANES changes dramatically due to the concurrent transformation from a cubic to a tetragonal spinel. The spectrum is different from XANES of tetragonal Mn 3+ spinels possessing approximately the same degree of tetragonal distortion as Li 2 Mn 2 O 4 . This spectral difference is attributed to the inserted Li + imparting an increased degree of covalency within the Li 2 Mn 2 O 4 structure resulting in a 1s → 4p + LMCT (ligand to metal charge transfer) shakedown. This increase in covalency was confirmed through Mn L-edge X-ray Emission Spectroscopy measurements. The increased degree of covalency provides insight into the lower Li + diffusion coefficients reported in the literature and the electronic conduction mechanism for Li x Mn 2 O 4 when x > 1.
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We have performed Mn K-edge X-ray Absorption and Mn L-edge emission spectroscopies on LiMn 2 O 4, its chemically delithiated and lithiated derivatives (λ-MnO 2 and Li 2 Mn 2 O 4, respectively), and two Mn 3+ spinel model compounds. These experiments were undertaken to understand the associated changes in atomic and electronic structure occurring when LiMn 2 O 4 is used in a rechargeable lithium cell. Subtle changes in the Mn K-edge X-ray absorption near edge structure (XANES) occur upon delithiation that are consistent with literature reports of the oxidation of Mn 3+ to Mn 4+, retention of the cubic phase, and contraction of the spinel lattice. Conversely, when LiMn 2 O 4 is lithiated, the XANES changes dramatically due to the concurrent transformation from a cubic to a tetragonal spinel. The spectrum is different from XANES of tetragonal Mn 3+ spinels possessing approximately the same degree of tetragonal distortion as Li 2 Mn 2 O 4 . This spectral difference is attributed to the inserted Li + imparting an increased degree of covalency within the Li 2 Mn 2 O 4 structure resulting in a 1s → 4p + LMCT (ligand to metal charge transfer) shakedown. This increase in covalency was confirmed through Mn L-edge X-ray Emission Spectroscopy measurements. The increased degree of covalency provides insight into the lower Li + diffusion coefficients reported in the literature and the electronic conduction mechanism for Li x Mn 2 O 4 when x > 1.
Key concepts: XANES, Spinel, Tetragonal crystal system, Valence (chemistry), Electronic structure, Chemistry, Crystallography, Absorption spectroscopy