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Floating zone crystal growth, structure, and properties of a cubic Li5.5La3Nb1.5Zr0.5O12 garnet-type lithium-ion conductor.

Authors :
Ramette, Caleb
Pressley, Lucas
Avdeev, Maxim
Lee, Minseong
Kushwaha, Satya
Krogstad, Matthew
Sarker, Suchismita
Cardon, Paul
Ruff, Jacob
Khan, Mojammel
Kataoka, Kunimitsu
McQueen, Tyrel
Ji, Huiwen
Source :
Journal of Materials Chemistry A; 10/28/2023, Vol. 11 Issue 40, p21754-21766, 13p
Publication Year :
2023

Abstract

As a promising candidate for solid-state electrolytes in Li-ion batteries, the garnet-type Li-ion conductor series Li<subscript>5+x</subscript>La<subscript>3</subscript>Nb<subscript>2−x</subscript>Zr<subscript>x</subscript>O<subscript>12</subscript> (LLNZO) (0 ≤ x ≤ 2) exhibits high ionic conductivity at room temperature. However, no previous single-crystal growth or characterization has been reported for LLNZO compositions 0 ≤ x ≤ 1. To obtain a complete understanding of the trend in the structure–property relationship in this class of materials, we used the floating zone (FZ) method to grow a single crystal of Li<subscript>5.5</subscript>La<subscript>3</subscript>Nb<subscript>1.5</subscript>Zr<subscript>0.5</subscript>O<subscript>12</subscript> that was 4 mm in diameter and 10 mm in length. Using Laue neutron single-crystal diffraction, two distinct Li sites were observed: tetrahedral 24d and octahedral 96h sites. The maximum entropy method (MEM) based on neutron single-crystal diffraction data was used to map Li nuclear density and estimate that the bottleneck of Li transport exists between neighboring tetrahedral and octahedral sites, and that Li is delocalized between split octahedral sites. Room-temperature Li-ion conductivity in Li<subscript>5.5</subscript>La<subscript>3</subscript>Nb<subscript>1.5</subscript>Zr<subscript>0.5</subscript>O<subscript>12</subscript> measured with electrochemical impedance spectroscopy (EIS) was 1.37 × 10<superscript>−4</superscript> S cm<superscript>−1</superscript>. The Li migration activation energy was estimated to be 0.50 eV from EIS and 0.47 eV from dielectric relaxation measurements. The Li-ion jump attempt rate was estimated to be 1.47 × 10<superscript>12</superscript> Hz while the time scale of successful migration is 10<superscript>−7</superscript> to 10<superscript>−6</superscript> s. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
11
Issue :
40
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
173037561
Full Text :
https://doi.org/10.1039/d3ta04606k