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Department of Physics and Chemistry
Semiconductor Energy Sensor Laboratory
1. Journal Articles
Hydrogen-Driven Low-Temperature Topotactic Transition in Nanocomb Cobaltite for Ultralow Power Ionic-Magnetic Coupled Applications
Choi, Songhee
;
Son, Jaeseok
;
MacManus-Driscoll, Judith L.
;
Lee, Shinbuhm
Department of Physics and Chemistry
Semiconductor Energy Sensor Laboratory
1. Journal Articles
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Title
Hydrogen-Driven Low-Temperature Topotactic Transition in Nanocomb Cobaltite for Ultralow Power Ionic-Magnetic Coupled Applications
Issued Date
2024-03
Citation
Choi, Songhee. (2024-03). Hydrogen-Driven Low-Temperature Topotactic Transition in Nanocomb Cobaltite for Ultralow Power Ionic-Magnetic Coupled Applications. Nano Letters, 24(12), 3606–3613. doi: 10.1021/acs.nanolett.3c04414
Type
Article
Author Keywords
ionic-magnetic coupling
;
LaCoOx
;
hydrogen-driventopotactic transition
;
3d-orbital occupation
;
atomicallyordered oxygen vacancynanocomb stripes
Keywords
OXYGEN
;
DIFFUSION
;
MEMRISTOR
;
DYNAMICS
;
OXIDES
;
CRYSTAL-STRUCTURE
ISSN
1530-6984
Abstract
We reversibly control ferromagnetic-antiferromagnetic ordering in an insulating ground state by annealing tensile-strained LaCoO3 films in hydrogen. This ionic-magnetic coupling occurs due to the hydrogen-driven topotactic transition between perovskite LaCoO3 and brownmillerite La2Co2O5 at a lower temperature (125-200 °C) and within a shorter time (3-10 min) than the oxygen-driven effect (500 °C, tens of hours). The X-ray and optical spectroscopic analyses reveal that the transition results from hydrogen-driven filling of correlated electrons in the Co 3d-orbitals, which successively releases oxygen by destabilizing the CoO6 octahedra into CoO4 tetrahedra. The transition is accelerated by surface exchange, diffusion of hydrogen in and oxygen out through atomically ordered oxygen vacancy “nanocomb” stripes in the tensile-strained LaCoO3 films. Our ionic-magnetic coupling with fast operation, good reproducibility, and long-term stability is a proof-of-principle demonstration of high-performance ultralow power magnetic switching devices for sensors, energy, and artificial intelligence applications, which are keys for attaining carbon neutrality. © 2024 American Chemical Society.
URI
http://hdl.handle.net/20.500.11750/56856
DOI
10.1021/acs.nanolett.3c04414
Publisher
American Chemical Society
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