Multimodal correlative study of Hall transport and magnetic phases in Fe/Gd multilayer systems

A Ahmad Us Saleheen (Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,) A Arnab Singh (Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,) D David Raftrey (Materials Sciences Division, Lawrence Berkeley National Laboratory 2 , Berkeley, California 94720,) M Mike A. Brozius (Department of Applied Physics and Science Education, Eindhoven University of Technology 4 , 5600 MB Eindhoven,) M Margaret R. McCarter Z Zoey Tumbleson (Materials Sciences Division, Lawrence Berkeley National Laboratory 2 , Berkeley, California 94720,) M Mi-Young Im (Materials Sciences Division, Lawrence Berkeley National Laboratory 3 , Berkeley, California 94720,) S Sergio A. Montoya (Center for Memory and Recording Research, University of California San Diego 6 , La Jolla, California 92093,) E Eric E. Fullerton P Peter Fischer S Stephen D. Kevan (Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,) S Sujoy Roy S Sophie A. Morley (Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,)

Abstract

The Fe/Gd multilayer system hosts a number of magnetic phases, such as stripe, mixed stripe and skyrmion, skyrmion lattice, and isolated skyrmions for a wide range of temperature and magnetic field. We report different Hall transport signals in a Fe/Gd system through multimodal correlative resonant soft x-ray scattering (RSXS), Hall effect, magneto-optic Kerr effect, and transmission x-ray microscopy measurements. The simultaneous nature of the RSXS and Hall transport measurements allowed us to accurately connect various features in the transport data with the specific magnetic phases. We found that the topological Hall effect (THE) shows peaks with opposite signs, which we attribute to two different mechanisms. Our multimodal correlative study indicates that the sign reversal in THE occurs when the system transforms to and from a skyrmion lattice and low density isolated skyrmion phases. We propose that the skyrmion lattice contributes to the THE through a Berry phase induced emergent magnetic field mechanism in one case, and a skew scattering mechanism corresponding to the isolated low density skyrmion state.

Article Details

Volume / Issue Vol. 126, Issue 14
Published April 01, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (13)

A

Ahmad Us Saleheen

Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,

A

Arnab Singh

Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,

D

David Raftrey

Materials Sciences Division, Lawrence Berkeley National Laboratory 2 , Berkeley, California 94720,

M

Mike A. Brozius

Department of Applied Physics and Science Education, Eindhoven University of Technology 4 , 5600 MB Eindhoven,

M

Margaret R. McCarter

Z

Zoey Tumbleson

Materials Sciences Division, Lawrence Berkeley National Laboratory 2 , Berkeley, California 94720,

M

Mi-Young Im

Materials Sciences Division, Lawrence Berkeley National Laboratory 3 , Berkeley, California 94720,

S

Sergio A. Montoya

Center for Memory and Recording Research, University of California San Diego 6 , La Jolla, California 92093,

E

Eric E. Fullerton

P

Peter Fischer

S

Stephen D. Kevan

Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,

S

Sujoy Roy

S

Sophie A. Morley

Advanced Light Source, Lawrence Berkeley National Laboratory 1 , Berkeley, California 94720,