Literature DB >> 21986676

Structure and dynamics of the fast lithium ion conductor "Li7La3Zr2O12".

Henrik Buschmann1, Janis Dölle, Stefan Berendts, Alexander Kuhn, Patrick Bottke, Martin Wilkening, Paul Heitjans, Anatoliy Senyshyn, Helmut Ehrenberg, Andriy Lotnyk, Viola Duppel, Lorenz Kienle, Jürgen Janek.   

Abstract

The solid lithium-ion electrolyte "Li(7)La(3)Zr(2)O(12)" (LLZO) with a garnet-type structure has been prepared in the cubic and tetragonal modification following conventional ceramic syntheses routes. Without aluminium doping tetragonal LLZO was obtained, which shows a two orders of magnitude lower room temperature conductivity than the cubic modification. Small concentrations of Al in the order of 1 wt% were sufficient to stabilize the cubic phase, which is known as a fast lithium-ion conductor. The structure and ion dynamics of Al-doped cubic LLZO were studied by impedance spectroscopy, dc conductivity measurements, (6)Li and (7)Li NMR, XRD, neutron powder diffraction, and TEM precession electron diffraction. From the results we conclude that aluminium is incorporated in the garnet lattice on the tetrahedral 24d Li site, thus stabilizing the cubic LLZO modification. Simulations based on diffraction data show that even at the low temperature of 4 K the Li ions are blurred over various crystallographic sites. This strong Li ion disorder in cubic Al-stabilized LLZO contributes to the high conductivity observed. The Li jump rates and the activation energy probed by NMR are in very good agreement with the transport parameters obtained from electrical conductivity measurements. The activation energy E(a) characterizing long-range ion transport in the Al-stabilized cubic LLZO amounts to 0.34 eV. Total electric conductivities determined by ac impedance and a four point dc technique also agree very well and range from 1 × 10(-4) Scm(-1) to 4 × 10(-4) Scm(-1) depending on the Al content of the samples. The room temperature conductivity of Al-free tetragonal LLZO is about two orders of magnitude lower (2 × 10(-6) Scm(-1), E(a) = 0.49 eV activation energy). The electronic partial conductivity of cubic LLZO was measured using the Hebb-Wagner polarization technique. The electronic transference number t(e-) is of the order of 10(-7). Thus, cubic LLZO is an almost exclusive lithium ion conductor at ambient temperature. This journal is © the Owner Societies 2011

Entities:  

Year:  2011        PMID: 21986676     DOI: 10.1039/c1cp22108f

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  36 in total

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4.  Deep hydration of an Li7-3xLa3Zr2MIIIxO12 solid-state electrolyte material: a case study on Al- and Ga-stabilized LLZO.

Authors:  Günther J Redhammer; Gerold Tippelt; Daniel Rettenwander
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7.  Garnet to hydrogarnet: effect of post synthesis treatment on cation substituted LLZO solid electrolyte and its effect on Li ion conductivity.

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8.  DFT Study of the Role of Al3+ in the Fast Ion-Conductor Li7-3x Al3+x La3Zr2O12 Garnet.

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9.  The solubility and site preference of Fe3+ in Li7-3x Fe x La3Zr2O12 garnets.

Authors:  D Rettenwander; C A Geiger; M Tribus; P Tropper; R Wagner; G Tippelt; W Lottermoser; G Amthauer
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10.  High-throughput design and optimization of fast lithium ion conductors by the combination of bond-valence method and density functional theory.

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