Phonon modes and Raman signatures of MnBi2nTe3n+1 (n=1,2,3,4) magnetic topological heterostructures
Yujin Cho, Jin Ho Kang, Liangbo Liang, Xiangru Kong, Subhajit Ghosh,, Fariborz Kargar, Chaowei Hu, Alexander A. Balandin, Alexander A. Puretzky, Ni, Ni, Chee Wei Wong

TL;DR
This study investigates phonon modes and Raman signatures in MnBi2nTe3n+1 heterostructures, revealing spin-phonon coupling effects and interlayer force constants, advancing understanding of their physical properties.
Contribution
First experimental and theoretical analysis of phonon modes in MnBi2nTe3n+1 heterostructures, highlighting the impact of additional Bi2Te3 layers on vibrational properties.
Findings
Raman modes distinguished by polarization configurations
Spin-phonon coupling affects linewidths below magnetic transition
Interlayer force constant estimated at 3.98×10^{19} N/m^3
Abstract
An intrinsic antiferromagnetic topological insulator can be realized by intercalating Mn-Te bilayer chain in a topological insulator, . provides not only a stable platform to demonstrate exotic physical phenomena, but also easy tunability of the physical properties. For example, inserting more layers in between two adjacent weakens the interlayer magnetic interactions between the layers. Here we present the first observations on the inter- and intra-layer phonon modes of (n=1,2,3,4) using cryogenic low-frequency Raman spectroscopy. We experimentally and theoretically distinguish the Raman vibrational modes using various polarization configurations. The two peaks at 66 cm and 112 cm show an abnormal perturbation in the…
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Taxonomy
TopicsTopological Materials and Phenomena · Physics of Superconductivity and Magnetism · High-pressure geophysics and materials
