A trapped-ion quantum computer simulates 2+1D Z2 lattice gauge theory dynamics, revealing glueball excitations and multi-order string breaking.
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A unified quark-hadronic framework for the ρ resonance determines its bare mass from refitted narrow-meson parameters and extracts the ππ coupling from phase-shift data to compute the physical width and bare-state fraction.
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Observation of glueball excitations and string breaking in a $2+1$D $\mathbb{Z}_2$ lattice gauge theory on a trapped-ion quantum computer
A trapped-ion quantum computer simulates 2+1D Z2 lattice gauge theory dynamics, revealing glueball excitations and multi-order string breaking.
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How to understand $\rho$ Resonance from the Quark Model and $\pi\pi$ $P$-wave phase shift
A unified quark-hadronic framework for the ρ resonance determines its bare mass from refitted narrow-meson parameters and extracts the ππ coupling from phase-shift data to compute the physical width and bare-state fraction.