Issue 23, 2011

Lithium diffusion pathways and vacancy formation in the Pmmn-Li1−xFeO2electrode material

Abstract

Models for Li+ ion mobility were developed and investigated in the ‘corrugated layer’ orthorhombic phase of Li1−xFeO2, an attractive possible electrode material for reversible lithium ion batteries. The ground-state crystal energy was computed by first-principles DFT (Density-Functional-Theory) methods, based on the use of the hybrid B3LYP functional with localized Gaussian-type basis sets. Appropriate supercells were devised as needed, with full least-energy structure optimization. In the defect-free case (x = 0), ion diffusion was found to take place cooperatively inside a fraction of active lithium layers separated by inert ones, so as to reduce lattice strain; intermediate bottleneck states of Li are either in tetrahedral (energy barrier ΔEa = 0.410 eV) or linear (ΔEa = 0.468 eV) coordination. For the Li0.75FeO2 deintercalated material a number of low energy vacancy configurations were considered, investigating also the vacancy influence on electron density of states and atomic charge distribution. The most favourable ion transport mechanisms (ΔEa = 0.292 and 0.304 eV) imply a linear Li bottleneck state, with all lithium layers active and a quite small lattice strain. Accordingly, in the defective material the predicted ionic conductivity at room temperature rises from 10−5–10−6 (LiFeO2) to 4 × 10−4 ohm−1 cm−1 (Li0.75FeO2).

Graphical abstract: Lithium diffusion pathways and vacancy formation in the Pmmn-Li1−xFeO2electrode material

Article information

Article type
Paper
Submitted
28 Feb 2011
Accepted
12 Apr 2011
First published
13 May 2011

Phys. Chem. Chem. Phys., 2011,13, 11156-11164

Lithium diffusion pathways and vacancy formation in the Pmmn-Li1−xFeO2electrode material

M. Catti and M. Montero-Campillo, Phys. Chem. Chem. Phys., 2011, 13, 11156 DOI: 10.1039/C1CP20551J

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