pairs may be produced in photonuclear collisions, either from the decays of photoproduced mesons or directly as nonresonant pairs. Measurements of photoproduction probe the couplings between the and charged kaons with photons and nuclear targets. The kaon-proton scattering occurs at energies far above those available elsewhere. We present the first measurement of coherent photoproduction of pairs on lead ions in ultraperipheral collisions using the ALICE detector, including the first investigation of direct production. There is significant production at low transverse momentum, consistent with coherent photoproduction on lead targets. In the mass range above the resonance, for rapidity and , the measured coherent photoproduction cross section is . The center-of-mass energy per nucleon of the photon-nucleus (Pb) system ranges from 33 to 188 GeV, far higher than previous measurements on heavy-nucleus targets. The cross section is larger than expected for photoproduction alone. The mass spectrum is fit to a cocktail consisting of decays, direct photoproduction, and interference between the two. The confidence regions for the amplitude and relative phase angle for direct photoproduction are presented. © 2024 CERN, for the ALICE Collaboration2024CERN
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This content will become publicly available on January 1, 2026
Massless fermions in uniform flux background on T2×R : Vacuum quantum numbers from single-particle filled modes using lattice regulator
The quantum numbers of monopoles in in the presence of massless fermions have been analyzed using a uniform flux background in coupled to fermions. An analogous study in is performed by studying the discrete symmetries of the Dirac Hamiltonian in the presence of a static uniform field on with a total flux of in the continuum. The degenerate ground states are classified based on their transformation properties under rotations of that leave the background field invariant. We find that the lattice analysis with overlap fermions exactly reproduces the transformation properties of the single-particle zero modes in the continuum. Whereas the transformation properties of the single-particle negative energy states can be studied in the continuum and the lattice, we are also able to study the transformation properties and the particle number (charge) of the many-body ground state on a finite lattice, and we show that the contributions from the fully filled single-particle states cannot be ignored. Published by the American Physical Society2025
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- PAR ID:
- 10587660
- Publisher / Repository:
- Physical Review D
- Date Published:
- Journal Name:
- Physical Review D
- Volume:
- 111
- Issue:
- 1
- ISSN:
- 2470-0010
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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