Ising-Type Magnetic Ordering in Atomically Thin FePS3

Magnetism in two-dimensional materials is not only of fundamental scientific interest but also a promising candidate for numerous applications. However, studies so far, especially the experimental ones, have been mostly limited to the magnetism arising from defects, vacancies, edges, or chemical dop...

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Published inNano letters Vol. 16; no. 12; pp. 7433 - 7438
Main Authors Lee, Jae-Ung, Lee, Sungmin, Ryoo, Ji Hoon, Kang, Soonmin, Kim, Tae Yun, Kim, Pilkwang, Park, Cheol-Hwan, Park, Je-Geun, Cheong, Hyeonsik
Format Journal Article
LanguageEnglish
Published American Chemical Society 14.12.2016
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ISSN1530-6984
1530-6992
1530-6992
DOI10.1021/acs.nanolett.6b03052

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Summary:Magnetism in two-dimensional materials is not only of fundamental scientific interest but also a promising candidate for numerous applications. However, studies so far, especially the experimental ones, have been mostly limited to the magnetism arising from defects, vacancies, edges, or chemical dopants which are all extrinsic effects. Here, we report on the observation of intrinsic antiferromagnetic ordering in the two-dimensional limit. By monitoring the Raman peaks that arise from zone folding due to antiferromagnetic ordering at the transition temperature, we demonstrate that FePS3 exhibits an Ising-type antiferromagnetic ordering down to the monolayer limit, in good agreement with the Onsager solution for two-dimensional order–disorder transition. The transition temperature remains almost independent of the thickness from bulk to the monolayer limit with T N ∼ 118 K, indicating that the weak interlayer interaction has little effect on the antiferromagnetic ordering.
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ISSN:1530-6984
1530-6992
1530-6992
DOI:10.1021/acs.nanolett.6b03052