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Photonuclear and Two-photon Interactions at High-Energy Nuclear Colliders
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Ultra-peripheral collisions of heavy ions and protons are the energy frontier for electromagnetic interactions. Both photonuclear and two-photon collisions are studied, at collision energies that are far higher than are available elsewhere. In this review, we will discuss physics topics that can be addressed with UPCs, including nuclear shadowing and nuclear structure and searches for beyond-standard-model physics.
Forward citations
Cited by 5 Pith papers
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Modelling Coincident Particle Production in Ultraperipheral Heavy Ion Collisions
A new SuperChic Monte Carlo implementation reproduces the ATLAS-observed rate and kinematic dependence of coincident rho meson and dimuon production in ultraperipheral PbPb collisions.
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CP Polarimetry with Linearly Polarized Photon Fusion and Double-Tagged Protons
The CP-mixing angle of a photon-coupled spin-zero resonance shifts the second harmonic in the azimuthal angle between the two tagged protons, enabling a decay-analyzer-independent CP measurement.
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Photoinduced inclusive cross sections in hadronic collisions at the LHC
The paper computes inclusive electromagnetic dissociation cross sections in pp and pPb collisions at the LHC from deep inelastic structure functions and presents them as distributions in mass and photon virtuality.
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Ultra-peripheral Collisions
Ultra-peripheral collisions of heavy ions are reviewed as the energy frontier for photon physics; the paper consolidates a decade of LHC/RHIC results and proposes no new measurement.
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Effective theories for nuclei at high energies
This paper reviews the Color Glass Condensate effective theory, covering its foundations, its role in deep inelastic scattering, and its use in setting initial conditions for heavy-ion collisions.
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