K. Bhattacharya, A. K. Bharatwaj, C. Singh, R. Gupta, R. Khasanov, S. Kanungo, A. K. Nayak, M. Majumder
{"title":"Hydrostatic and chemical pressure driven crossover from commensurate to the incommensurate state of the Weyl semimetal Mn$_{3+x}$Sn$_{1-x}$","authors":"K. Bhattacharya, A. K. Bharatwaj, C. Singh, R. Gupta, R. Khasanov, S. Kanungo, A. K. Nayak, M. Majumder","doi":"arxiv-2409.10012","DOIUrl":null,"url":null,"abstract":"The observation of large intrinsic anomalous Hall conductivity (AHC) in the\nnon-collinear antiferromagnetic (AFM) phase of the Weyl semimetal Mn$_3$Sn\ngenerates enormous interest in uncovering the entanglement between the real\nspace magnetic ordering and the momentum space band structure. Previous studies\nshow that changes in the magnetic structure induced by the application of\nhydrostatic and chemical pressure can significantly affect the AHC of\nMn$_{3+x}$Sn$_{1-x}$ system. Here, we employ the muon spin relaxation/rotation\n($\\mu^+$SR) technique to systematically investigate the evolution of different\nmagnetic states in the Mn$_{3+x}$Sn$_{1-x}$ as a function of hydrostatic and\nchemical pressure. We find two muon sites experimentally, which is also\nsupported by our \\textit{ab initio} calculations. Our $\\mu^+$SR experiments\naffirm that the $x = 0.05$ compound exhibits a commensurate magnetic state\nthroughout the magnetically ordered phase below the Neel temperature $T_N\n\\approx 420$~K in ambient pressure. In contrast, we observe an incommensurate\nmagnetic state below $T_{IC} \\sim 175$~K when a hydrostatic pressure of 1.5~GPa\nis applied. A similar transition from the commensurate to incommensurate state\nis also found with chemical pressure for $x = 0.04$ and $x = 0.03$, using\n$\\mu^+$SR and elastic neutron scattering experiments. Using band structure\ncalculations, we have shown the emergence of Fermi nesting in Mn$_3$Sn and the\nsubsequent development of incommensurate magnetic ordering under\nhydrostatic/chemical pressure.","PeriodicalId":501171,"journal":{"name":"arXiv - PHYS - Strongly Correlated Electrons","volume":"16 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Strongly Correlated Electrons","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.10012","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The observation of large intrinsic anomalous Hall conductivity (AHC) in the
non-collinear antiferromagnetic (AFM) phase of the Weyl semimetal Mn$_3$Sn
generates enormous interest in uncovering the entanglement between the real
space magnetic ordering and the momentum space band structure. Previous studies
show that changes in the magnetic structure induced by the application of
hydrostatic and chemical pressure can significantly affect the AHC of
Mn$_{3+x}$Sn$_{1-x}$ system. Here, we employ the muon spin relaxation/rotation
($\mu^+$SR) technique to systematically investigate the evolution of different
magnetic states in the Mn$_{3+x}$Sn$_{1-x}$ as a function of hydrostatic and
chemical pressure. We find two muon sites experimentally, which is also
supported by our \textit{ab initio} calculations. Our $\mu^+$SR experiments
affirm that the $x = 0.05$ compound exhibits a commensurate magnetic state
throughout the magnetically ordered phase below the Neel temperature $T_N
\approx 420$~K in ambient pressure. In contrast, we observe an incommensurate
magnetic state below $T_{IC} \sim 175$~K when a hydrostatic pressure of 1.5~GPa
is applied. A similar transition from the commensurate to incommensurate state
is also found with chemical pressure for $x = 0.04$ and $x = 0.03$, using
$\mu^+$SR and elastic neutron scattering experiments. Using band structure
calculations, we have shown the emergence of Fermi nesting in Mn$_3$Sn and the
subsequent development of incommensurate magnetic ordering under
hydrostatic/chemical pressure.