Electron–Phonon and Spin–Lattice Coupling in Atomically Thin Layers of MnBi2Te4
Author(s) -
Jeongheon Choe,
David Lujan,
Martin Rodriguez-Vega,
Zhipeng Ye,
Aritz Leonardo,
Jiamin Quan,
T. Nathan Nunley,
Liang-Juan Chang,
ShangFan Lee,
Jiaqiang Yan,
Gregory A. Fiete,
Rui He,
Xiaoqin Li
Publication year - 2021
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.1c01719
Subject(s) - condensed matter physics , phonon , materials science , electron , scattering , coupling (piping) , lattice (music) , physics , optics , quantum mechanics , acoustics , metallurgy
MnBi 2 Te 4 represents a new class of magnetic topological insulators in which novel quantum phases emerge at temperatures higher than those found in magnetically doped thin films. Here, we investigate how couplings between electron, spin, and lattice are manifested in the phonon spectra of few-septuple-layer thick MnBi 2 Te 4 . After categorizing phonon modes by their symmetries, we study the systematic changes in frequency, line width, and line shape of a spectrally isolated A 1g mode. The electron-phonon coupling increases in thinner flakes as manifested in a broader phonon line width, which is likely due to changes of the electron density of states. In 4- and 5-septuple thick samples, the onset of magnetic order below the Néel temperature is concurrent with a transition to an insulating state. We observe signatures of a reduced electron-phonon scattering across this transition as reflected in the reduced Fano parameter. Finally, spin-lattice coupling is measured and modeled from temperature-dependent phonon frequency.
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