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Modulating Curie Temperature and Magnetic Anisotropy in Nanoscale-Layered Cr2Te3 Films: Implications for Room-Temperature Spintronics

Author(s)
Lee, In HakChoi, Byoung KiKim, Hyuk JinKim, Min JayJeong, Hu YoungLee, Jong HoonPark, Seung-YoungJo, YounghunLee, ChankiChoi, Jun WooCho, Seong WonLee, SuyounKim, YounghakKim, Beom HyunLee, Kyeong JunHeo, Jin EunChang, Seo HyoungLi, FengpingChittari, Bheema LingamJung, JeilChang, Young Jun
Issued Date
2021-05
DOI
10.1021/acsanm.1c00391
URI
https://scholarworks.unist.ac.kr/handle/201301/53147
Fulltext
https://pubs.acs.org/doi/10.1021/acsanm.1c00391
Citation
ACS APPLIED NANO MATERIALS, v.4, no.5, pp.4810 - 4819
Abstract
Nanoscale-layered ferromagnets have demonstrated fascinating two-dimensional magnetism down to atomic layers, providing a peculiar playground of spin orders for investigating fundamental physics and spintronic applications. However, the strategy for growing films with designed magnetic properties is not well established yet. Herein, we present a versatile method to control the Curie temperature (T-C) and magnetic anisotropy during the growth of ultrathin Cr2Te3 films. We demonstrate an increase of the TC from 165 to 310 K in sync with magnetic anisotropy switching from an out-of-plane orientation to an in-plane one, respectively, via controlling the Te source flux during film growth, leading to different c-lattice parameters while preserving the stoichiometries and thicknesses of the films. We attributed this modulation of magnetic anisotropy to the switching of the orbital magnetic moment, using X-ray magnetic circular dichroism analysis. We also inferred that different c-lattice constants might be responsible for the magnetic anisotropy change, supported by theoretical calculations. These findings emphasize the potential of ultrathin Cr2Te3 films as candidates for developing room-temperature spintronics applications, and similar growth strategies could be applicable to fabricate other nanoscale layered magnetic compounds.
Publisher
AMER CHEMICAL SOC
ISSN
2574-0970
Keyword (Author)
nanoscale-layered-ferromagnetsroom-temperature ferromagnetismmagnetic anisotropytwo-dimensional materialsspintronic applications
Keyword
FERROMAGNETISMDISCOVERY

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