Bulletin of the American Physical Society
APS March Meeting 2022
Volume 67, Number 3
Monday–Friday, March 14–18, 2022; Chicago
Session Q54: Skyrmion Lattice and Magnetization Textures
3:00 PM–5:48 PM,
Wednesday, March 16, 2022
Room: McCormick Place W-476
Sponsoring
Unit:
GMAG
Chair: John Singleton, NHMFL/ LANL; Marcelo Jaime, Los Alamos Natl Lab
Abstract: Q54.00009 : Helimagnetic and skyrmionic correlations close to the Quantum Critical Points of MnSi under pressure and of Mn1-xFexSi.*
5:00 PM–5:12 PM
Presenter:
Catherine Pappas
(Delft University of Technology)
Authors:
Catherine Pappas
(Delft University of Technology)
Andrey O Leonov
(Chiral Research Center, Hiroshima Daigaku, Hiroshima, Japan)
Lars J Bannenberg
(Delft University of Technology, The Netherlands)
Ravil Sadykov
(Institute for Nuclear Research, Moscow and Institute of High Pressure Physics, Troitsk, Russian Academy of Sciences, Russian Federation)
Rob Dalgliesh
(ISIS, UK)
Chris Goodway
(ISIS, UK)
Deborah L. Schlagel
(Ames Laboratory, USA)
Thomas A. Lograsso
(Ames Laboratory, USA)
Eddy Lelièvre-Berna
(ILL, France)
Peter Falus
(ILL, France)
Peter Fouquet
(ILL, France)
Thomas Wolf
(KIT, Karlsruhe, Germany)
Frank Weber
(KIT, Karlsruhe, Germany.)
Under mechanical pressure conical and skyrmionic scattering appear under magnetic fields even even above the critical pressure pC, where long range helimagnetism dissapears, and where a non-Fermi liquid and topological Hall effect behavior has been reported. We attribute this behaviour to a softening of the magnetic moment due to an enhancement of the itinerant electron character of the magnetism with increasing pressure. We argue that this enhancement could drive the destabilization of the long-range helical order at pC [1].
Further analysis of our results shows that the effect of pressure on the helical pitch is very different from that of doping. Thus, in contrast to MnSi under pressure, frustration possibly due to RKKY interactions is important in Mn1‑xFexSi. This frustration, which would increase with increasing doping, would explain both the expansion of the precursor phase with increasing x in Mn1-xFexSi and the abrupt disappearance of long range helimagnetic periodicity .
We further discuss the destabilisation of long range helical periodicity in both MnSi under pressure and Mn1-xFexSi, which is driven by the modification of the electronic state but with different specific microscopic mechanisms [2].
[1] Bannenberg, L. J. et al. PRB 100, 054447 (2019). [2] C. Pappas, C. et al. PRR. 3, 013019 (2021).
*The work has been financially supported by The Netherlands Organization for Scientific Research (NWO) through Project No. 72 1.012.102 (Larmor) and by the Vrije FOM program Skyrmionics.
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