Mechanism of magnetic phase transition in correlated magnetic metal: insight into itinerant ferromagnet Fe$_{3-δ}$GeTe$_2$

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Hauptverfasser: Xu, Yuanji, Wang, Yuechao, Jin, Xintao, Liu, Haifeng, Liu, Yu, Song, Haifeng, Tian, Fuyang
Format: Preprint
Veröffentlicht: 2024
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author Xu, Yuanji
Wang, Yuechao
Jin, Xintao
Liu, Haifeng
Liu, Yu
Song, Haifeng
Tian, Fuyang
author_facet Xu, Yuanji
Wang, Yuechao
Jin, Xintao
Liu, Haifeng
Liu, Yu
Song, Haifeng
Tian, Fuyang
contents Developing a comprehensive magnetic theory for correlated itinerant magnets poses challenges due to the difficulty in reconciling both local moments and itinerant electrons. In this work, we investigate the microscopic process of magnetic phase transition in ferromagnetic metal Fe$_{3-δ}$GeTe$_2$. We find that Hund's coupling is crucial for establishing ferromagnetic order. During the ferromagnetic transition, we observe the formation of quasiparticle flat bands and an opposing tendency in spectral weight transfer, primarily between the lower and upper Hubbard bands, across the two spin channels. Moreover, our results indicate that one of the inequivalent Fe sites exhibits Mott physics, while the other Fe site exhibits Hund's physics, attributable to their distinct atomic environments. We suggest that ferromagnetic order reduces spin fluctuations and makes flat bands near the Fermi level more distinct. The hybridization between the distinctly flat bands and other itinerant bands offers a possible way to form heavy fermion behavior in ferromagnets. The complex interactions of competing orders drive correlated magnetic metals to a new frontier for discovering outstanding quantum states.
format Preprint
id arxiv_https___arxiv_org_abs_2407_04957
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Mechanism of magnetic phase transition in correlated magnetic metal: insight into itinerant ferromagnet Fe$_{3-δ}$GeTe$_2$
Xu, Yuanji
Wang, Yuechao
Jin, Xintao
Liu, Haifeng
Liu, Yu
Song, Haifeng
Tian, Fuyang
Strongly Correlated Electrons
Developing a comprehensive magnetic theory for correlated itinerant magnets poses challenges due to the difficulty in reconciling both local moments and itinerant electrons. In this work, we investigate the microscopic process of magnetic phase transition in ferromagnetic metal Fe$_{3-δ}$GeTe$_2$. We find that Hund's coupling is crucial for establishing ferromagnetic order. During the ferromagnetic transition, we observe the formation of quasiparticle flat bands and an opposing tendency in spectral weight transfer, primarily between the lower and upper Hubbard bands, across the two spin channels. Moreover, our results indicate that one of the inequivalent Fe sites exhibits Mott physics, while the other Fe site exhibits Hund's physics, attributable to their distinct atomic environments. We suggest that ferromagnetic order reduces spin fluctuations and makes flat bands near the Fermi level more distinct. The hybridization between the distinctly flat bands and other itinerant bands offers a possible way to form heavy fermion behavior in ferromagnets. The complex interactions of competing orders drive correlated magnetic metals to a new frontier for discovering outstanding quantum states.
title Mechanism of magnetic phase transition in correlated magnetic metal: insight into itinerant ferromagnet Fe$_{3-δ}$GeTe$_2$
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2407.04957