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  • alexanderrogge paylaşılan bir bağlantı
    2024-05-12 04:24:05 -
    Clare Sansom - Probing neptunium's atomic structure with laser spectroscopy:

    https://phys.org/news/2024-05-probing-neptunium-atomic-laser-spectroscopy.html

    #Neptunium237 #Neptunium #Isotope #ActinideMetal #LaserSpectroscopy #Spectroscopy #IonizationPotential #Ionization #RadioactiveWaste #AtomicPhysics #Physics
    Clare Sansom - Probing neptunium's atomic structure with laser spectroscopy: https://phys.org/news/2024-05-probing-neptunium-atomic-laser-spectroscopy.html #Neptunium237 #Neptunium #Isotope #ActinideMetal #LaserSpectroscopy #Spectroscopy #IonizationPotential #Ionization #RadioactiveWaste #AtomicPhysics #Physics
    PHYS.ORG
    Probing neptunium's atomic structure with laser spectroscopy
    A new technique developed by researchers in Germany can measure ionization states of this element more precisely than before, with implications for its detection and remediation in radioactive waste.
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  • alexanderrogge paylaşılan bir bağlantı
    2024-05-12 04:17:00 -
    Science China Press - Tauonium: The smallest and heaviest atom with pure electromagnetic interaction:

    https://phys.org/news/2024-05-tauonium-smallest-heaviest-atom-pure.html

    #Tauonium #Tauon #Tau #Lepton #ElectroweakTheory #StandardModel #AtomicPhysics #ParticlePhysics #Physics
    Science China Press - Tauonium: The smallest and heaviest atom with pure electromagnetic interaction: https://phys.org/news/2024-05-tauonium-smallest-heaviest-atom-pure.html #Tauonium #Tauon #Tau #Lepton #ElectroweakTheory #StandardModel #AtomicPhysics #ParticlePhysics #Physics
    PHYS.ORG
    Tauonium: The smallest and heaviest atom with pure electromagnetic interaction
    The hydrogen atom was once considered the simplest atom in nature, composed of a structureless electron and a structured proton. However, as research progressed, scientists discovered a simpler type of atom, consisting of structureless electrons, muons, or tauons and their equally structureless antiparticles. These atoms are bound together solely by electromagnetic interactions, with simpler structures than hydrogen atoms, providing a new perspective on scientific problems such as quantum mechanics, fundamental symmetry, and gravity.
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  • alexanderrogge paylaşılan bir bağlantı
    2024-02-25 04:27:47 -
    Karen McNulty Walsh, Peter Genzer, Brookhaven National Laboratory - Super strong magnetic fields leave imprint on nuclear matter:

    https://phys.org/news/2024-02-super-strong-magnetic-fields-imprint.html

    #HeavyIonCollision #ElectromagneticField #MagneticField #QuarkGluonPlasma #QGP #AtomicPhysics #Physics
    Karen McNulty Walsh, Peter Genzer, Brookhaven National Laboratory - Super strong magnetic fields leave imprint on nuclear matter: https://phys.org/news/2024-02-super-strong-magnetic-fields-imprint.html #HeavyIonCollision #ElectromagneticField #MagneticField #QuarkGluonPlasma #QGP #AtomicPhysics #Physics
    PHYS.ORG
    Super strong magnetic fields leave imprint on nuclear matter
    A new analysis by the STAR collaboration at the Relativistic Heavy Ion Collider (RHIC), a particle collider at the U.S. Department of Energy's (DOE) Brookhaven National Laboratory, provides the first direct evidence of the imprint left by what may be the universe's most powerful magnetic fields on "deconfined" nuclear matter. The evidence comes from measuring the way differently charged particles separate when emerging from collisions of atomic nuclei at this DOE Office of Science user facility.
    0 Yorumlar 0 hisse senetleri 13188 Views
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