51猎奇入口

Skip to main content
Department Of Physics text logo
  • Research
    • Our research
    • Our research groups
    • Our research in action
    • Research funding support
    • Summer internships for undergraduates
  • 51猎奇入口
    • Undergraduates
    • Postgraduates
  • Engage
    • For alumni
    • For business
    • For schools
    • For the public
  • Support
Menu
Magnetic skyrmions
Credit: TH

Professor Thorsten Hesjedal FInstP

Professor of Condensed Matter Physics

Research theme

  • Quantum materials

Sub department

  • Condensed Matter Physics

Research groups

  • Topological Magnetism Group
Thorsten.Hesjedal@physics.ox.ac.uk
  • About
  • Publications

Imaging nucleation and propagation of pinned domains in few-layer Fe5鈥搙GeTe2

ACS Nano American Chemical Society 17:17 (2023) 16879-16885

Authors:

Michael Hoegen, Ryuji Fujita, Anthony KC Tan, Alexandra Geim, Michael Pitts, Zhengxian Li, Luciano Stefan, Thorsten Hesjedal, Mete Atatuere

Abstract:

Engineering nontrivial spin textures in magnetic van der Waals materials is highly desirable for spintronic applications based on hybrid heterostructures. The recent observation of labyrinth and bubble domains in the near room-temperature ferromagnet Fe5鈥搙GeTe2 down to a bilayer thickness was thus a significant advancement toward van der Waals-based many-body physics. However, the physical mechanism responsible for stabilizing these domains remains unclear and requires further investigation. Here, we combine cryogenic scanning diamond quantum magnetometry and field reversal techniques to elucidate the high-field propagation and nucleation of bubble domains in trilayer Fe5鈥搙GeTe2. We provide evidence of pinning-induced nucleation of magnetic bubbles and further show an unexpectedly high layer-dependent coercive field. These measurements can be easily extended to a wide range of magnetic materials to provide valuable nanoscale insight into domain processes critical for spintronic applications.

Magnetic soliton layers in epitaxial MnSi

Acta Crystallographica Section A: Foundations and advances International Union of Crystallography (IUCr) 79:a2 (2023) c573-c573

Authors:

Gl Causer, M Azhar, T Hesjedal, M Garst, C Pfleiderer

Covalency, correlations, and interlayer interactions governing the magnetic and electronic structure of Mn3Si2Te6

Physical Review B American Physical Society (APS) 108:5 (2023) 54419

Authors:

Chiara Bigi, Lei Qiao, Chao Liu, Paolo Barone, Monica Ciomaga Hatnean, Gesa-R Siemann, Barat Achinuq, Daniel Alexander Mayoh, Giovanni Vinai, Vincent Polewczyk, Deepak Dagur, Federico Mazzola, Peter Bencok, Thorsten Hesjedal, Gerrit van der Laan, Wei Ren, Geetha Balakrishnan, Silvia Picozzi, Phil DC King

Probing the Local Electronic Structure in Metal Halide Perovskites through Cobalt Substitution

Small Methods Wiley 7:6 (2023)

Authors:

Amir A Haghighirad, Matthew T Klug, Liam Duffy, Junjie Liu, Arzhang Ardavan, Gerrit Laan, Thorsten Hesjedal, Henry J Snaith

Evolution of Emergent Monopoles into Magnetic Skyrmion Strings

Nano letters American Chemical Society (ACS) 23:11 (2023) 5164-5170

Authors:

Haonan Jin, Wancong Tan, Yizhou Liu, Kejing Ran, Raymond Fan, Yanyan Shangguan, Yao Guang, Gerrit van der Laan, Thorsten Hesjedal, Jinsheng Wen, Guoqiang Yu, Shilei Zhang

Abstract:

Topological defects are fundamental concepts in physics, but little is known about the transition between distinct types across different dimensionalities. In topological magnetism, as in field theory, the transition between 1D strings and 0D monopoles is a key process whose observation has remained elusive. Here, we introduce a novel mechanism that allows for the controlled stabilization of emergent monopoles and show that magnetic skyrmion strings can be folded into monopoles. Conversely, they act as seeds out of which the entire string structure can unfold, containing its complete information. In chiral magnets, this process can be observed by resonant elastic X-ray scattering when the objects are in proximity to a polarized ferromagnet, whereby a pure monopole lattice is emerging on the surface. Our experimental proof of the reversible evolution from monopole to string sheds new light on topological defects and establishes the emergent monopole lattice as a new 3D topological phase.

Pagination

  • First page First
  • Previous page Prev
  • …
  • Page 6
  • Page 7
  • Page 8
  • Page 9
  • Current page 10
  • Page 11
  • Page 12
  • Page 13
  • Page 14
  • …
  • Next page Next
  • Last page Last

Footer Menu

  • Contact us
  • Giving to the Dept of Physics
  • Work with us
  • Media

User account menu

  • Log in

Follow us

FIND US

Clarendon Laboratory,

Parks Road,

Oxford,

OX1 3PU

CONTACT US

Tel: +44(0)1865272200

Department Of Physics text logo

漏 University of Oxford - Department of Physics

Cookies | Privacy policy | Accessibility statement

  • Home
  • Research
  • 51猎奇入口
  • Engage
  • Our people
  • News & Comment
  • Events
  • Our facilities & services
  • 51猎奇入口
  • Giving to Physics