Three-dimensional topological magnetic monopoles and their interactions in a ferromagnetic meta-lattice.


Journal

Nature nanotechnology
ISSN: 1748-3395
Titre abrégé: Nat Nanotechnol
Pays: England
ID NLM: 101283273

Informations de publication

Date de publication:
Mar 2023
Historique:
received: 02 03 2022
accepted: 13 12 2022
pubmed: 24 1 2023
medline: 24 1 2023
entrez: 23 1 2023
Statut: ppublish

Résumé

Topological magnetic monopoles (TMMs), also known as hedgehogs or Bloch points, are three-dimensional (3D) non-local spin textures that are robust to thermal and quantum fluctuations due to the topology protection

Identifiants

pubmed: 36690739
doi: 10.1038/s41565-022-01311-0
pii: 10.1038/s41565-022-01311-0
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

227-232

Informations de copyright

© 2023. The Author(s), under exclusive licence to Springer Nature Limited.

Références

Milde, P. et al. Unwinding of a skyrmion lattice by magnetic monopoles. Science 340, 1076–1080 (2013).
Donnelly, C. et al. Three-dimensional magnetization structures revealed with X-ray vector nanotomography. Nature 547, 328–331 (2017).
Tatara, G. & Nakabayashi, N. Emergent spin electromagnetism induced by magnetization textures in the presence of spin–orbit interaction. J. Appl. Phys. 115, 172609 (2014).
Zou, J., Zhang, S. & Tserkovnyak, Y. Topological transport of deconfined hedgehogs in magnets. Phys. Rev. Lett. 125, 267201 (2020).
Yu, X. et al. Real-space observation of topological defects in extended skyrmion-strings. Nano Lett. 20, 7313–7320 (2020).
Pietilä, V. & Möttönen, M. Creation of Dirac monopoles in spinor Bose–Einstein condensates. Phys. Rev. Lett. 103, 030401 (2009).
Ray, M. W., Ruokokoski, E., Kandel, S., Möttönen, M. & Hall, D. S. Observation of Dirac monopoles in a synthetic magnetic field. Nature 505, 657–660 (2014).
Kanazawa, N. et al. Critical phenomena of emergent magnetic monopoles in a chiral magnet. Nat. Commun. 7, 11622 (2016).
Donnelly, C. et al. Experimental observation of vortex rings in a bulk magnet. Nat. Phys. 17, 316–321 (2021).
Im, M.-Y. et al. Dynamics of the Bloch point in an asymmetric permalloy disk. Nat. Commun. 10, 593 (2019).
Abo, G. S. et al. Definition of magnetic exchange length. IEEE Trans. Magn. 49, 4937–4939 (2013).
Han, J. E. & Crespi, V. H. Abrupt topological transitions in the hysteresis curves of ferromagnetic metalattices. Phys. Rev. Lett. 89, 197203 (2002).
Liu, Y. et al. Confined chemical fluid deposition of ferromagnetic metalattices. Nano Lett. 18, 546–552 (2018).
Phatak, C., Petford-Long, A. K. & De Graef, M. Three-dimensional study of the vector potential of magnetic structures. Phys. Rev. Lett. 104, 253901 (2010).
Phatak, C., Heinonen, O., De Graef, M. & Petford-Long, A. K. Nanoscale skyrmions in a nonchiral metallic multiferroic: Ni
Davis, T. J., Janoschka, D., Dreher, P. & Frank, B. Ultrafast vector imaging of plasmonic skyrmion dynamics with deep subwavelength resolution. Science 368, eaba6415 (2020).
Streubel, R. et al. Retrieving spin textures on curved magnetic thin films with full-field soft X-ray microscopies. Nat. Commun. 6, 1–11 (2015).
Stöhr, J. & Siegmann, H. C. Magnetism: From Fundamentals to Nanoscale Dynamics 1st edn (Springer, 2006).
Donnelly, C. et al. Time-resolved imaging of three-dimensional nanoscale magnetization dynamics. Nat. Nanotechnol. 15, 356–360 (2020).
Hierro-Rodriguez, A. et al. Revealing 3D magnetization of thin films with soft X-ray tomography: magnetic singularities and topological charges. Nat. Commun. 11, 6382 (2020).
Witte, K. et al. From 2D STXM to 3D imaging: soft X-ray laminography of thin specimens. Nano Lett. 20, 1305–1314 (2020).
Josten, E. et al. Curvature-mediated spin textures in magnetic multi-layered nanotubes. Preprint at https://arxiv.org/abs/2103.13310 (2021).
Donnelly, C. et al. Complex free-space magnetic field textures induced by three-dimensional magnetic nanostructures. Nat. Nanotechnol. 17, 136–142 (2022).
Hermosa-Muñoz, J. et al. 3D magnetic configuration of ferrimagnetic multilayers with competing interactions visualized by soft X-ray vector tomography. Commun. Phys. 5, 26 (2022).
Tripathi, A. et al. Dichroic coherent diffractive imaging. Proc. Natl Acad. Sci. USA 108, 13393–13398 (2011).
Chen, C. T., Sette, F., Ma, Y. & Modesti, S. Soft-X-ray magnetic circular dichroism at the L
Maiden, A., Johnson, D. & Li, P. Further improvements to the ptychographical iterative engine. Optica 4, 736–745 (2017).
Volovik, G. E. Linear momentum in ferromagnets. J. Phys. C 20, L83–L87 (1987).
Nagaosa, N. & Tokura, Y. Topological properties and dynamics of magnetic skyrmions. Nat. Nanotechnol. 8, 899–911 (2013).
Fert, A., Reyren, N. & Cros, V. Magnetic skyrmions: advances in physics and potential applications. Nat. Rev. Mater. 2, 1–15 (2017).
Jain, A. K., Murty, M. N. & Flynn, P. J. Data clustering: a review. ACM Comput. Surv. 31, 264–323 (1999).
Streubel, R. et al. Magnetism in curved geometries. J. Phys. D 49, 363001 (2016).
Vitelli, V. & Turner, A. M. Anomalous coupling between topological defects and curvature. Phys. Rev. Lett. 93, 215301 (2004).
Bayaraa, T., Xu, C. & Bellaiche, L. Magnetization compensation temperature and frustration-induced topological defects in ferrimagnetic antiperovskite Mn
Miao, J., Charalambous, P., Kirz, J. & Sayre, D. Extending the methodology of X-ray crystallography to allow imaging of micrometre-sized non-crystalline specimens. Nature 400, 342 (1999).
Miao, J., Ishikawa, T., Robinson, I. K. & Murnane, M. Beyond crystallography: diffractive imaging using coherent X-ray light sources. Science 348, 530–535 (2015).
Rodenburg, J. M. et al. Hard-X-ray lensless imaging of extended objects. Phys. Rev. Lett. 98, 34801 (2007).
Thibault, P. et al. High-resolution scanning X-ray diffraction microscopy. Science 321, 379–382 (2008).
Watanabe, R. et al. Extension of size of monodisperse silica nanospheres and their well-ordered assembly. J. Colloid Interface Sci. 360, 1–7 (2011).
Russell, J. L., Noel, G. H., Warren, J. M., Tran, N.-L. L. & Mallouk, T. E. Binary colloidal crystal films grown by vertical evaporation of silica nanoparticle suspensions. Langmuir 33, 10366–10373 (2017).
Mahale, P. et al. Oxide-free three-dimensional germanium/silicon core–shell metalattice made by high-pressure confined chemical vapor deposition. ACS Nano 14, 12810–12818 (2020).
Regan, T. J. et al. Chemical effects at metal/oxide interfaces studied by X-ray-absorption spectroscopy. Phys. Rev. B 64, 214422 (2001).
Lambers, E. C. et al. Room-temperature oxidation of Ni(110) at low and atmospheric oxygen pressures. Oxid. Met. 45, 301–321 (1996).
Shapiro, D. A. et al. An ultrahigh-resolution soft X-ray microscope for quantitative analysis of chemically heterogeneous nanomaterials. Sci. Adv. 6, eabc4904 (2020).
Eisebitt, S. et al. Lensless imaging of magnetic nanostructures by X-ray spectro-holography. Nature 432, 885–888 (2004).
Marchesini, S. et al. SHARP: a distributed GPU-based ptychographic solver. J. Appl. Crystallogr. 49, 1245–1252 (2016).
Goldstein, R. M., Zebker, H. A. & Werner, C. L. Satellite radar interferometry: two-dimensional phase unwrapping. Radio Sci. 23, 713–720 (1988).
McNaught, A.D. and Wilkinson, A. Compendium of Chemical Terminology 2nd edn (International Union of Pure and Applied Chemistry, 1997).
Yang, Y. et al. Determining the three-dimensional atomic structure of an amorphous solid. Nature 592, 60–64 (2021).
Hannon, J. P., Trammell, G. T., Blume, M. & Gibbs, D. X-ray resonance exchange scattering. Phys. Rev. Lett. 61, 1245 (1988).
Scott, M. C. et al. Electron tomography at 2.4-ångström resolution. Nature 483, 444–447 (2012).
Chen, C.-C. et al. Three-dimensional imaging of dislocations in a nanoparticle at atomic resolution. Nature 496, 74–77 (2013).
Pham, M., Yuan, Y., Rana, A., Miao, J. & Osher, S. RESIRE: Accurate tomography with real space iterative reconstruction. Preprint at https://doi.org/10.21203/rs.3.rs-2223879/v1 (2022).
Yuan, Y. et al. Three-dimensional atomic packing in amorphous solids with liquid-like structure. Nat. Mater. 21, 95–102 (2022).
Scheres, S. H. W. & Chen, S. Prevention of overfitting in cryo-EM structure determination. Nat. Methods 9, 853–854 (2012).
Gilbert, T. L. A phenomenological theory of damping in ferromagnetic materials. IEEE Trans. Magn. 40, 3443–3449 (2004).
Evans, R. F. L. et al. Atomistic spin model simulations of magnetic nanomaterials. J. Phys. Condens. Matter 26, 103202 (2014).

Auteurs

Arjun Rana (A)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.
STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.

Chen-Ting Liao (CT)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Ezio Iacocca (E)

Department of Mathematics, Physics, and Electrical Engineering, Northumbria University, Newcastle upon Tyne, UK.
Center for Magnetism and Magnetic Nanostructures, University of Colorado, Colorado Springs, CO, USA.

Ji Zou (J)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.

Minh Pham (M)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
Department of Mathematics, University of California, Los Angeles, Los Angeles, CA, USA.

Xingyuan Lu (X)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.
School of Physical Science and Technology, Soochow University, Suzhou, China.

Emma-Elizabeth Cating Subramanian (EC)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Yuan Hung Lo (YH)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.
STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.

Sinéad A Ryan (SA)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Charles S Bevis (CS)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Robert M Karl (RM)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Andrew J Glaid (AJ)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.

Jeffrey Rable (J)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.

Pratibha Mahale (P)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.
Department of Chemistry, University of Pennsylvania, Philadelphia, PA, USA.

Joel Hirst (J)

Materials and Engineering Research Institute, Sheffield Hallam University, Sheffield, UK.

Thomas Ostler (T)

Materials and Engineering Research Institute, Sheffield Hallam University, Sheffield, UK.
Department of Physics and Mathematics, University of Hull, Hull, UK.

William Liu (W)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.
STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.

Colum M O'Leary (CM)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.
STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.

Young-Sang Yu (YS)

Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

Karen Bustillo (K)

National Center for Electron Microscopy, Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

Hendrik Ohldag (H)

Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

David A Shapiro (DA)

Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

Sadegh Yazdi (S)

Renewable and Sustainable Energy Institute, University of Colorado, Boulder, CO, USA.

Thomas E Mallouk (TE)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.
Department of Chemistry, University of Pennsylvania, Philadelphia, PA, USA.

Stanley J Osher (SJ)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
Department of Mathematics, University of California, Los Angeles, Los Angeles, CA, USA.

Henry C Kapteyn (HC)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Vincent H Crespi (VH)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.

John V Badding (JV)

Departments of Chemistry, Physics, Materials Science and Engineering and Materials Research Institute, Penn State University, University Park, PA, USA.

Yaroslav Tserkovnyak (Y)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA.

Margaret M Murnane (MM)

STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA.
JILA and Department of Physics, University of Colorado and NIST, Boulder, CO, USA.

Jianwei Miao (J)

Department of Physics & Astronomy and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, USA. miao@physics.ucla.edu.
STROBE Science and Technology Center, University of Colorado and NIST, Boulder, CO, USA. miao@physics.ucla.edu.

Classifications MeSH