4.5 Article

Noncoplanar ferrimagnetism and local crystalline-electric-field anisotropy in the quasicrystal approximant Au70Si17Tb13

Journal

JOURNAL OF PHYSICS-CONDENSED MATTER
Volume 32, Issue 41, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-648X/ab997d

Keywords

quasicrystal approximant; non-coplanar magnetic structure; crystalline electric field splitting; neutron scattering

Funding

  1. US-Japan Collaborative Program on neutron scattering
  2. Scientific User Facilities Division, Office of Basic Energy Sciences, US Department of Energy
  3. J-PARC user program [2016A0269, 2017A0233]
  4. MEXT of Japan [JP15H05883, JP16H04018, JP17K18744, JP19H01834, JP19K21839, JP19H05824, JP19H05817, JP19H05818]
  5. research program 'dynamic alliance for open innovation bridging human, environment, and materials'

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Neutron scattering experiments have been performed to elucidate magnetic properties of the quasicrystal approximant Au70Si17Tb13, consisting of icosahedral spin clusters in a body-centered-cubic lattice. Bulk magnetic measurements performed on the single crystalline sample unambiguously confirm long-range ordering atT(C)= 11.6 +/- 1 K. In contrast to the simple ferromagnetic response in the bulk measurements, single crystal neutron diffraction confirms a formation of intriguing non-collinear and non-coplanar magnetic order. The magnetic moment direction was found to be nearly tangential to the icosahedral cluster surface in the local mirror plane, which is quite similar to that recently found in the antiferromagnetic quasicrystal approximant Au72Al14Tb14. Inelastic neutron scattering on the powdered sample exhibits a very broad peak centered atPLANCK CONSTANT OVER TWO PI omega similar or equal to 4 meV. The observed inelastic spectrum was explained by the crystalline-electric-field model taking account of the chemical disorder at the fractional Au/Si sites. The resulting averaged anisotropy axis for the crystalline-electric-field ground state is consistent with the ordered moment direction determined in the magnetic structure analysis, confirming that the non-coplanar magnetic order is stabilized by the local uniaxial anisotropy.

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