Quasi-two-dimensional magnon identification in antiferromagneticFePS3via magneto-Raman spectroscopy
Autor: | Jeffrey R. Simpson, Thuc Mai, Rolando Valdes Aguilar, Jason E. Douglas, Angela R. Hight Walker, Nicholas P. Butch, Amber McCreary, Robert D. McMichael, Cindi L. Dennis |
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Rok vydání: | 2020 |
Předmět: |
Physics
Condensed matter physics Magnetic structure Phonon Magnon Mott insulator 02 engineering and technology 021001 nanoscience & nanotechnology 01 natural sciences symbols.namesake Lattice (order) 0103 physical sciences symbols Antiferromagnetism Condensed Matter::Strongly Correlated Electrons 010306 general physics 0210 nano-technology Raman spectroscopy Spectroscopy |
Zdroj: | Physical Review B. 101 |
ISSN: | 2469-9969 2469-9950 |
DOI: | 10.1103/physrevb.101.064416 |
Popis: | Recently it was discovered that van der Waals bonded magnetic materials retain long range magnetic ordering down to a single layer, opening many avenues in fundamental physics and potential applications of these fascinating materials. One such material is $\mathrm{FeP}{\mathrm{S}}_{3}$, a large spin $(S=2)$ Mott insulator where the Fe atoms form a honeycomb lattice. In the bulk, $\mathrm{FeP}{\mathrm{S}}_{3}$ has been shown to be a quasi-two-dimensional-Ising antiferromagnet, with additional features in the Raman spectra emerging below the N\'eel temperature $({T}_{\mathrm{N}})$ of approximately 120 K. Using magneto-Raman spectroscopy as an optical probe of magnetic structure, we show that one of these Raman-active modes in the magnetically ordered state is actually a magnon with a frequency of $\ensuremath{\approx}3.7\phantom{\rule{0.16em}{0ex}}\mathrm{THz}\phantom{\rule{4pt}{0ex}}(122\phantom{\rule{0.16em}{0ex}}\mathrm{c}{\mathrm{m}}^{\ensuremath{-}1})$. Contrary to previous work, which interpreted this feature as a phonon, our Raman data shows the expected frequency shifting and splitting of the antiferromagnetic magnon as a function of temperature and magnetic field, respectively, where we determine the $g$ factor to be $\ensuremath{\approx}2$. In addition, the symmetry behavior of the magnon is studied by polarization-dependent Raman spectroscopy and explained using the magnetic point group of $\mathrm{FeP}{\mathrm{S}}_{3}$. |
Databáze: | OpenAIRE |
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