Please use this identifier to cite or link to this item: https://doi.org/10.1038/s41467-021-21807-y
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dc.titleReversible hydrogen control of antiferromagnetic anisotropy in α-Fe2O3
dc.contributor.authorHariom Jani
dc.contributor.authorJiajun Linghu
dc.contributor.authorSonu Hooda
dc.contributor.authorRajesh V. Chopdekar
dc.contributor.authorChangjian Li
dc.contributor.authorGanesh Ji Omar
dc.contributor.authorSaurav Prakash
dc.contributor.authorYonghua Du
dc.contributor.authorPing Yang
dc.contributor.authorAgnieszka Banas
dc.contributor.authorKrzysztof Banas
dc.contributor.authorSiddhartha Ghosh
dc.contributor.authorSunil Ojha
dc.contributor.authorG. R. Umapathy
dc.contributor.authorDinakar Kanjilal
dc.contributor.authorA. Ariando
dc.contributor.authorStephen J. Pennycook
dc.contributor.authorElke Arenholz
dc.contributor.authorPaolo G. Radaelli
dc.contributor.authorJ. M. D. Coey
dc.contributor.authorYuan Ping Feng
dc.contributor.authorT. Venkatesan
dc.date.accessioned2021-04-12T06:37:09Z
dc.date.available2021-04-12T06:37:09Z
dc.date.issued2021-03-12
dc.identifier.citationHariom Jani, Jiajun Linghu, Sonu Hooda, Rajesh V. Chopdekar, Changjian Li, Ganesh Ji Omar, Saurav Prakash, Yonghua Du, Ping Yang, Agnieszka Banas, Krzysztof Banas, Siddhartha Ghosh, Sunil Ojha, G. R. Umapathy, Dinakar Kanjilal, A. Ariando, Stephen J. Pennycook, Elke Arenholz, Paolo G. Radaelli, J. M. D. Coey, Yuan Ping Feng, T. Venkatesan (2021-03-12). Reversible hydrogen control of antiferromagnetic anisotropy in α-Fe2O3. Nature Communications 12 : 1668. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-021-21807-y
dc.identifier.issn20411723
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/189160
dc.description.abstractAntiferromagnetic insulators are a ubiquitous class of magnetic materials, holding the promise of low-dissipation spin-based computing devices that can display ultra-fast switching and are robust against stray fields. However, their imperviousness to magnetic fields also makes them difficult to control in a reversible and scalable manner. Here we demonstrate a novel proof-of-principle ionic approach to control the spin reorientation (Morin) transition reversibly in the common antiferromagnetic insulator α-Fe2O3 (haematite) – now an emerging spintronic material that hosts topological antiferromagnetic spin-textures and long magnon-diffusion lengths. We use a low-temperature catalytic-spillover process involving the post-growth incorporation or removal of hydrogen from α-Fe2O3 thin films. Hydrogenation drives pronounced changes in its magnetic anisotropy, Néel vector orientation and canted magnetism via electron injection and local distortions. We explain these effects with a detailed magnetic anisotropy model and first-principles calculations. Tailoring our work for future applications, we demonstrate reversible control of the room-temperature spin-state by doping/expelling hydrogen in Rh-substituted α-Fe2O3.
dc.publisherSpringer Nature
dc.subjectMagnetic properties and materials
dc.subjectPhase transitions and critical phenomena
dc.subjectSpintronics
dc.subjectSurfaces
dc.subjectinterfaces and thin films
dc.typeArticle
dc.contributor.departmentELECTRICAL AND COMPUTER ENGINEERING
dc.contributor.departmentMATERIALS SCIENCE AND ENGINEERING
dc.contributor.departmentDEPT OF PHYSICS
dc.contributor.departmentNUS NANOSCIENCE & NANOTECH INITIATIVE
dc.contributor.departmentSINGAPORE SYNCHROTRON LIGHT SOURCE
dc.description.doi10.1038/s41467-021-21807-y
dc.description.sourcetitleNature Communications
dc.description.volume12
dc.description.page1668
dc.published.statePublished
dc.grant.idNRF2015NRF-CRP001-015
dc.grant.fundingagencyNational Research Foundation
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