Close Menu
geekfence.comgeekfence.com
    What's Hot

    Ana Inês Inácio: TNO Researcher Advancing Wireless Tech

    May 9, 2026

    Telenor launches sovereign cloud venture in Norway

    May 9, 2026

    Posit AI Blog: AO, NAO, ENSO: A wavelet analysis example

    May 9, 2026
    Facebook X (Twitter) Instagram
    • About Us
    • Contact Us
    Facebook Instagram
    geekfence.comgeekfence.com
    • Home
    • UK Tech News
    • AI
    • Big Data
    • Cyber Security
      • Cloud Computing
      • iOS Development
    • IoT
    • Mobile
    • Software
      • Software Development
      • Software Engineering
    • Technology
      • Green Technology
      • Nanotechnology
    • Telecom
    geekfence.comgeekfence.com
    Home»Nanotechnology»Magnetic circular dichroism imaging of atomic-scale antiferromagnetic order at a buried interface
    Nanotechnology

    Magnetic circular dichroism imaging of atomic-scale antiferromagnetic order at a buried interface

    AdminBy AdminMarch 23, 2026No Comments5 Mins Read3 Views
    Facebook Twitter Pinterest LinkedIn Telegram Tumblr Email
    Magnetic circular dichroism imaging of atomic-scale antiferromagnetic order at a buried interface
    Share
    Facebook Twitter LinkedIn Pinterest Email


  • van der Laan, G. et al. Experimental proof of magnetic X-ray dichroism. Phys. Rev. B 34, 6529–6531 (1986).

    Article 

    Google Scholar
     

  • van der Laan, G. & Figueroa, A. I. X-ray magnetic circular dichroism—a versatile tool to study magnetism. Coord. Chem. Rev. 277–278, 95–129 (2014).

    Article 

    Google Scholar
     

  • Cui, J., Sha, H., Yang, W. & Yu, R. Antiferromagnetic imaging via ptychographic phase retrieval. Sci. Bull. 69, 466–472 (2024).

    Article 

    Google Scholar
     

  • Tanigaki, T. et al. Electron holography observation of individual ferrimagnetic lattice planes. Nature 631, 521–525 (2024).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Kohno, Y., Seki, T., Findlay, S. D., Ikuhara, Y. & Shibata, N. Real-space visualization of intrinsic magnetic fields of an antiferromagnet. Nature 602, 234–239 (2022).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Schattschneider, P. et al. Detection of magnetic circular dichroism using a transmission electron microscope. Nature 441, 486–488 (2006).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Rusz, J., Eriksson, O., Novák, P. & Oppeneer, P. M. Sum rules for electron energy loss near edge spectra. Phys. Rev. B 76, 060408 (2007).

    Article 

    Google Scholar
     

  • Calmels, L. et al. Experimental application of sum rules for electron energy loss magnetic chiral dichroism. Phys. Rev. B 76, 060409 (2007).

    Article 

    Google Scholar
     

  • Ali, H. et al. Noise-dependent bias in quantitative STEM-EMCD experiments revealed by bootstrapping. Ultramicroscopy 257, 113891 (2024).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Rusz, J. et al. Magnetic measurements with atomic-plane resolution. Nat. Commun. 7, 12672 (2016).

    Article 
    PubMed 
    PubMed Central 
    CAS 

    Google Scholar
     

  • Wang, Z. et al. Atomic scale imaging of magnetic circular dichroism by achromatic electron microscopy. Nat. Mater. 17, 221–225 (2018).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Ali, H. et al. Visualizing subatomic orbital and spin moments using a scanning transmission electron microscope. Nat. Mater. 24, 1215–1220 (2025).

    Article 
    PubMed 
    PubMed Central 
    CAS 

    Google Scholar
     

  • Kimoto, K. et al. Element-selective imaging of atomic columns in a crystal using STEM and EELS. Nature 450, 702–704 (2007).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Muller, D. A. et al. Atomic-scale chemical imaging of composition and bonding by aberration-corrected microscopy. Science 319, 1073–1076 (2008).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Idrobo, J. C. et al. Detecting magnetic ordering with atomic size electron probes. Adv. Struct. Chem. Imaging 2, 5 (2016).

    Article 

    Google Scholar
     

  • Rusz, J., Rubino, S. & Schattschneider, P. First-principles theory of chiral dichroism in electron microscopy applied to 3d ferromagnets. Phys. Rev. B 75, 214425 (2007).

    Article 

    Google Scholar
     

  • Calmels, L. & Rusz, J. Momentum-resolved EELS and EMCD spectra from the atomic multiplet theory: application to magnetite. Ultramicroscopy 110, 1042–1045 (2010).

    Article 
    CAS 

    Google Scholar
     

  • Song, D. & Dunin-Borkowski, R. E. Three-dimensional measurement of magnetic moment vectors using electron magnetic chiral dichroism at atomic scale. Phys. Rev. Lett. 127, 087202 (2021).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Ritter, C. et al. The magnetic structure of DyFeO3 revisited: Fe spin reorientation and Dy incommensurate magnetic order. J. Phys. Condens. Matter 34, 265801 (2022).

    Article 
    CAS 

    Google Scholar
     

  • Song, D. et al. An in-plane magnetic chiral dichroism approach for measurement of intrinsic magnetic signals using transmitted electrons. Nat. Commun. 8, 15348 (2017).

    Article 
    PubMed 
    PubMed Central 
    CAS 

    Google Scholar
     

  • Rusz, J. et al. Localization of magnetic circular dichroic spectra in transmission electron microscopy experiments with atomic plane resolution. Phys. Rev. B 95, 174412 (2017).

    Article 

    Google Scholar
     

  • Jones, L. et al. Managing dose-, damage- and data-rates in multi-frame spectrum-imaging. Microscopy 67, i98–i113 (2018).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Haruta, M. et al. Atomic-resolution two-dimensional mapping of holes in the cuprate superconductor La2−xSrxCuO4±δ. Phys. Rev. B 97, 205139 (2018).

    Article 
    CAS 

    Google Scholar
     

  • Cui, R. et al. Role of Dy 4f electrons on magnetic coupling and reorientation in DyFeO3. J. Phys. Condens. Matter 36, 335501 (2024).

    Article 
    CAS 

    Google Scholar
     

  • Kuo, C.-Y. et al. k = 0 magnetic structure and absence of ferroelectricity in SmFeO3. Phys. Rev. Lett. 113, 217203 (2014).

    Article 
    PubMed 

    Google Scholar
     

  • Luo, W. et al. Magnetic ‘dead’ layer at a complex oxide interface. Phys. Rev. Lett. 101, 247204 (2008).

  • Šmejkal, L., Sinova, J. & Jungwirth, T. Emerging research landscape of altermagnetism. Phys. Rev. X 12, 040501 (2022).


    Google Scholar
     

  • Bernevig, B. A., Felser, C. & Beidenkopf, H. Progress and prospects in magnetic topological materials. Nature 603, 41–51 (2022).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Shibata, N. et al. Atomic resolution electron microscopy in a magnetic field free environment. Nat. Commun. 10, 2308 (2019).

    Article 
    PubMed 
    PubMed Central 
    CAS 

    Google Scholar
     

  • Ke, Y.-J., Zhang, X.-Q., Ge, H., Ma, Y. & Cheng, Z.-H. Low field induced giant anisotropic magnetocaloric effect in DyFeO3 single crystal. Chinese Phys. B 24, 037501 (2015).

    Article 

    Google Scholar
     

  • Rusz, J., Bhowmick, S., Eriksson, M. & Karlsson, N. Scattering of electron vortex beams on a magnetic crystal: towards atomic-resolution magnetic measurements. Phys. Rev. B 89, 134428 (2014).

    Article 

    Google Scholar
     

  • Rusz, J. Modified automatic term selection v2: a faster algorithm to calculate inelastic scattering cross-sections. Ultramicroscopy 177, 20–25 (2017).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Barthel, J. Dr. Probe: a software for high-resolution STEM image simulation. Ultramicroscopy 193, 1–11 (2018).

    Article 
    PubMed 
    CAS 

    Google Scholar
     

  • Song, D. et al. Source data for atomic-column EMCD technique. Zenodo (2026).



  • Source link

    Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

    Related Posts

    Self-adhesive high-entropy oxide sub-nanowire monolithic electrocatalysts

    May 8, 2026

    National Nanotechnology Day 2025 Activities

    May 7, 2026

    How polarons travel through TiO₂ – Physics World

    May 6, 2026

    Hamamatsu Photonics Expands Intended Use of NanoZoomer® MD Series in Europe to Include Cytology

    May 5, 2026

    MIT scientists finally reveal the hidden structure of a mysterious high-tech material

    May 4, 2026

    Programmable artificial RNA condensates in mammalian cells

    May 2, 2026
    Top Posts

    Understanding U-Net Architecture in Deep Learning

    November 25, 202539 Views

    Hard-braking events as indicators of road segment crash risk

    January 14, 202627 Views

    Redefining AI efficiency with extreme compression

    March 25, 202626 Views
    Don't Miss

    Ana Inês Inácio: TNO Researcher Advancing Wireless Tech

    May 9, 2026

    When Ana Inês Inácio goes to work at the Netherlands Organization for Applied Scientific Research…

    Telenor launches sovereign cloud venture in Norway

    May 9, 2026

    Posit AI Blog: AO, NAO, ENSO: A wavelet analysis example

    May 9, 2026

    Why Moving Your CCM to the Cloud Can’t Wait

    May 9, 2026
    Stay In Touch
    • Facebook
    • Instagram
    About Us

    At GeekFence, we are a team of tech-enthusiasts, industry watchers and content creators who believe that technology isn’t just about gadgets—it’s about how innovation transforms our lives, work and society. We’ve come together to build a place where readers, thinkers and industry insiders can converge to explore what’s next in tech.

    Our Picks

    Ana Inês Inácio: TNO Researcher Advancing Wireless Tech

    May 9, 2026

    Telenor launches sovereign cloud venture in Norway

    May 9, 2026

    Subscribe to Updates

    Please enable JavaScript in your browser to complete this form.
    Loading
    • About Us
    • Contact Us
    • Disclaimer
    • Privacy Policy
    • Terms and Conditions
    © 2026 Geekfence.All Rigt Reserved.

    Type above and press Enter to search. Press Esc to cancel.