home.social

#quantummaterials — Public Fediverse posts

Live and recent posts from across the Fediverse tagged #quantummaterials, aggregated by home.social.

fetched live
  1. Exciton-Magnetic Interactions Pave Way for Quantum Technologies

    📰 Original title: Quantum breakthrough links light and magnetism in atomically thin materials

    🤖 IA: It's not clickbait ✅
    👥 Users: It's not clickbait ✅

    View full AI summary en.killbait.com/exciton-magnet

    #science #quantummaterials #excitons #magnetism

  2. Scientists Create Long-Sought Quantum Material for Room-Temperature Electronics

    📰 Original title: Physicists finally build a quantum material predicted more than a decade ago

    🤖 IA: It's clickbait ⚠️
    👥 Users: It's clickbait ⚠️

    View full AI summary en.killbait.com/scientists-cre

    #science #quantummaterials #topologicalinsulators #qu...

  3. STRAINING METALS YIELDS NEW PATHWAYS FOR CATALYSIS AND MATERIALS

    New way to stretch metals at the atomic level helps chemical reactions and makes materials for quantum computers and electronics. Learn how it works.

    #MetalCatalysis, #QuantumMaterials, #AtomicStrain, #ChemicalReactions, #NewElectronics

    newsletter.tf/straining-metals

  4. Unlocking the potential of “miracle material” for future electronics

    It turns out the extraordinary properties of graphene are even more mysterious than previously known. For the first time, researchers have observed “Floquet effects” in graphene. This means Floquet engineering – where the properties of a material can be very precisely altered using pulses of light – also works in such materials, opening up potential for future tech: uni-goettingen.de/en/3240.html

    Research in #NaturePhysics: doi.org/10.1038/s41567-025-029

    #QuantumMaterials #QuantumComputing #DFG

    Illustration thanks to www.linasegerer.de

  5. Unlocking the potential of “miracle material” for future electronics

    It turns out the extraordinary properties of graphene are even more mysterious than previously known. For the first time, researchers have observed “Floquet effects” in graphene. This means Floquet engineering – where the properties of a material can be very precisely altered using pulses of light – also works in such materials, opening up potential for future tech: uni-goettingen.de/en/3240.html

    Research in #NaturePhysics: doi.org/10.1038/s41567-025-029

    #QuantumMaterials #QuantumComputing #DFG

    Illustration thanks to www.linasegerer.de

  6. Exotic new superconductors are breaking expectations, showing behaviours that defy current theories. These discoveries challenge our understanding of quantum materials, from unusual pairing mechanisms to unexpected resilience under magnetic fields. Could they unlock new possibilities in energy transmission or quantum computing? The mystery deepens, and the potential grows. #Superconductors #QuantumMaterials #Innovation
    quantamagazine.org/exotic-new-

  7. Exotic new superconductors are breaking expectations, showing behaviours that defy current theories. These discoveries challenge our understanding of quantum materials, from unusual pairing mechanisms to unexpected resilience under magnetic fields. Could they unlock new possibilities in energy transmission or quantum computing? The mystery deepens, and the potential grows. #Superconductors #QuantumMaterials #Innovation
    quantamagazine.org/exotic-new-

  8. Excited to share a new colloquium by Prof. Andrea Cavalleri, a founding director of the MPI for the Structure and Dynamics of Matter 🎓✨ In his Nordita talk, he explores how coherent electromagnetic radiation can induce unexpected phases like magnetic order, ferroelectricity, and high-temperature superconductivity.

    🔗 Watch the lecture here: enabla.com/pub/1119/about

    Full abstract: In this colloquium, I will discuss how coherent electromagnetic radiation, when tuned to drive collective modes in quantum materials, can be used to induce unexpected dynamical phases. An illustrative set of examples will be discussed for the nonlinear control of the crystal lattice, which is used to induce magnetic order in paramagnetic materials, ferroelectricity in paraelectrics, non-equilibrium superconductivity at high temperatures, and other dynamical phases. These studies open up new directions in fundamental research but also expose a set of phenomena that will inevitably be encountered if one wishes to use quantum materials in ultra-high bit-rate applications.

    #QuantumPhysics #QuantumMaterials #NonlinearOptics #Superconductivity #Ferroelectricity #OpenAccess

  9. Hidden Harmonies: Scientists discover magnon-phonon Fermi resonance in #antiferromagnets, proposing an innovative way leading to novel #DataStorage technologies based on such #QuantumMaterials.
    #THz @HZDR @Radboud_uni @UniKoeln

    Image: B. Schröder / HZDR

    ▶️hzdr.de/presse/magnon-phonon_f

  10. Hidden Harmonies: Scientists discover magnon-phonon Fermi resonance in #antiferromagnets, proposing an innovative way leading to novel #DataStorage technologies based on such #QuantumMaterials.
    #THz @HZDR @Radboud_uni @UniKoeln

    Image: B. Schröder / HZDR

    ▶️hzdr.de/presse/magnon-phonon_f

  11. #QuantumSensor for the Atomic World: An international research team from Germany's Forschungszentrum Jülich and Korea's IBS Center for Quantum Nanoscience (QNS) developed a #quantumsensor 🧬 capable of detecting minute magnetic fields at the atomic length scale. This pioneering work realizes a long-held dream of scientists: an MRI-like tool for #quantummaterials 🧪. fz-juelich.de/de/aktuelles/new

  12. #QuantumSensor for the Atomic World: An international research team from Germany's Forschungszentrum Jülich and Korea's IBS Center for Quantum Nanoscience (QNS) developed a #quantumsensor 🧬 capable of detecting minute magnetic fields at the atomic length scale. This pioneering work realizes a long-held dream of scientists: an MRI-like tool for #quantummaterials 🧪. fz-juelich.de/de/aktuelles/new