Enregistré dans:
Détails bibliographiques
Auteurs principaux: Aji, Seno, Oda, Tatsuro, Fujishiro, Yukako, Kanazawa, Naoya, Saito, Hiraku, Endo, Hitoshi, Hino, Masahiro, Itoh, Shinichi, Arima, Taka-hisa, Tokura, Yoshinori, Nakajima, Taro
Format: Preprint
Publié: 2023
Sujets:
Accès en ligne:https://arxiv.org/abs/2305.01172
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866929216610631680
author Aji, Seno
Oda, Tatsuro
Fujishiro, Yukako
Kanazawa, Naoya
Saito, Hiraku
Endo, Hitoshi
Hino, Masahiro
Itoh, Shinichi
Arima, Taka-hisa
Tokura, Yoshinori
Nakajima, Taro
author_facet Aji, Seno
Oda, Tatsuro
Fujishiro, Yukako
Kanazawa, Naoya
Saito, Hiraku
Endo, Hitoshi
Hino, Masahiro
Itoh, Shinichi
Arima, Taka-hisa
Tokura, Yoshinori
Nakajima, Taro
contents The helimagnetic compounds MnSi$_{1-x}$Ge$_{x}$ show the three-dimensional multiple-$q$ order as referred to as spin-hedgehog-anti-hedgehog (SHAH) lattice. Two representative forms of SHAH are cubic-3$q$ lattice with $q \| \langle100\rangle$ and tetrahedral-4$q$ lattice with $q \| \langle111\rangle$, which show up typically for $x=1.0-~0.8$ and for $x=0.6$, respectively. Here, we have investigated the spin fluctuations in the MnSi$_{1-x}$Ge$_{x}$ polycrystalline samples with $x=0.6$ and $0.8$ by using the time-of-flight (TOF) neutron inelastic scattering and MIEZE-type neutron spin echo techniques to elucidate the microscopic origin of the unconventional Hall effect in the SHAH lattice states. This research is motivated by the observation of a sign change in the unconventional Hall resistivity as a function of temperature [Y. Fujishiro et al., Nat. Comm. $\textbf{10}$, 1059 (2019)]. The present results reveal the correspondences between the temperature ranges where the positive Hall resistivity and spin fluctuations are observed. These results agree well with the theoretical model of the conduction electrons scattered by the fluctuating spin clusters with a non-zero average of sign-biased scalar spin chirality as a mechanism of the positive Hall resistivity [H. Ishizuka and N. Nagaosa, Sci. Adv. $\textbf{4}$, eaap9962 (2018)].
format Preprint
id arxiv_https___arxiv_org_abs_2305_01172
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Direct observations of spin fluctuations in spin-hedgehog-anti-hedgehog lattice states in MnSi$_{1-x}$Ge$_x$ ($x=0.6$ and $0.8$) at zero magnetic field
Aji, Seno
Oda, Tatsuro
Fujishiro, Yukako
Kanazawa, Naoya
Saito, Hiraku
Endo, Hitoshi
Hino, Masahiro
Itoh, Shinichi
Arima, Taka-hisa
Tokura, Yoshinori
Nakajima, Taro
Strongly Correlated Electrons
Materials Science
The helimagnetic compounds MnSi$_{1-x}$Ge$_{x}$ show the three-dimensional multiple-$q$ order as referred to as spin-hedgehog-anti-hedgehog (SHAH) lattice. Two representative forms of SHAH are cubic-3$q$ lattice with $q \| \langle100\rangle$ and tetrahedral-4$q$ lattice with $q \| \langle111\rangle$, which show up typically for $x=1.0-~0.8$ and for $x=0.6$, respectively. Here, we have investigated the spin fluctuations in the MnSi$_{1-x}$Ge$_{x}$ polycrystalline samples with $x=0.6$ and $0.8$ by using the time-of-flight (TOF) neutron inelastic scattering and MIEZE-type neutron spin echo techniques to elucidate the microscopic origin of the unconventional Hall effect in the SHAH lattice states. This research is motivated by the observation of a sign change in the unconventional Hall resistivity as a function of temperature [Y. Fujishiro et al., Nat. Comm. $\textbf{10}$, 1059 (2019)]. The present results reveal the correspondences between the temperature ranges where the positive Hall resistivity and spin fluctuations are observed. These results agree well with the theoretical model of the conduction electrons scattered by the fluctuating spin clusters with a non-zero average of sign-biased scalar spin chirality as a mechanism of the positive Hall resistivity [H. Ishizuka and N. Nagaosa, Sci. Adv. $\textbf{4}$, eaap9962 (2018)].
title Direct observations of spin fluctuations in spin-hedgehog-anti-hedgehog lattice states in MnSi$_{1-x}$Ge$_x$ ($x=0.6$ and $0.8$) at zero magnetic field
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2305.01172