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In Situ Atom Probe Deintercalation of Lithium-Manganese-Oxide.

作者信息

Pfeiffer Björn, Maier Johannes, Arlt Jonas, Nowak Carsten

机构信息

Institute of Materials Physics,Georg-August-University Göttingen,Friedrich-Hund-Platz 1,37077 Göttingen,Germany.

出版信息

Microsc Microanal. 2017 Apr;23(2):314-320. doi: 10.1017/S1431927616012691. Epub 2017 Jan 30.

DOI:10.1017/S1431927616012691
PMID:28134068
Abstract

Atom probe tomography is routinely used for the characterization of materials microstructures, usually assuming that the microstructure is unaltered by the analysis. When analyzing ionic conductors, however, gradients in the chemical potential and the electric field penetrating dielectric atom probe specimens can cause significant ionic mobility. Although ionic mobility is undesirable when aiming for materials characterization, it offers a strategy to manipulate materials directly in situ in the atom probe. Here, we present experimental results on the analysis of the ionic conductor lithium-manganese-oxide with different atom probe techniques. We demonstrate that, at a temperature of 30 K, characterization of the materials microstructure is possible without measurable Li mobility. Also, we show that at 298 K the material can be deintercalated, in situ in the atom probe, without changing the manganese-oxide host structure. Combining in situ atom probe deintercalation and subsequent conventional characterization, we demonstrate a new methodological approach to study ionic conductors even in early stages of deintercalation.

摘要

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