Non-equilibrium THz-phonon spin coupling in CrI3
V Shokeen, M Pavelka, R Chulkov, A Yaroslavtsev, J Rogvall, D Muradas Belinch\'on, U Noumbe, M Abdel-Hafiez, M Venkata Kamalakar, O Gr{\aa}n\"as, H A D\"urr

TL;DR
This study demonstrates that in CrI3, both bending and stretching phonon modes can induce magnetization oscillations, revealing a broader scope of spin-phonon coupling at THz frequencies for potential spintronic applications.
Contribution
It provides the first evidence that both phonon modes in CrI3 can couple to and influence magnetization, expanding understanding of spin-phonon interactions in 2D ferromagnets.
Findings
Both phonon modes induce magnetization oscillations.
Spin-phonon coupling occurs for both bending and stretching modes.
Contradicts previous findings limited to the 3.9 THz mode.
Abstract
Manipulating magnetism at the THz timescale in atomically thin ferromagnets by exploiting the interactions of spins with optical phonon modes presents an innovative idea for THz spintronics and magnonics. Utilizing the coupling of phonon modes to the magnetization could lead to new ways of generating and controlling spin wave excitations in future applications. We use femtosecond optical laser pulses to generate excitons, bound electron-hole pairs, in bulk-like ferromagnet CrI3 flakes and probe the subsequent charge and spin dynamics with optical pump-probe spectroscopy. In CrI3, exciton formation is known to drive coherent optical phonon modes with 2.4 and 3.9 THz frequencies corresponding to the bending and stretching of the Cr-I bonds. We show that both phonon modes also lead to magnetization oscillations. This establishes spin-phonon coupling for both modes, contrary to previous…
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Taxonomy
TopicsInorganic Chemistry and Materials · Heusler alloys: electronic and magnetic properties · Advanced Chemical Physics Studies
