Towards four-pion effects in multi-hadron decays
Rajnandini Mukherjee, Maxwell T. Hansen

TL;DR
This paper introduces a new formalism to relate finite-volume energies and matrix elements involving two- and four-particle states, aiding lattice calculations of multi-hadron decays and scattering processes.
Contribution
It presents a perturbative approach connecting two- and four-particle states in finite volume, including a quantization condition and numerical implementation for energies up to six particles.
Findings
Clear signatures of two- and four-particle states in volume-dependent energies
Avoided level crossings sensitive to two-to-four couplings
Formalism applicable to hadronic decay amplitude analysis
Abstract
The rigorous treatment of four-particle intermediate and final states poses a major challenge for lattice calculations of scattering and decay amplitudes, as well as long-distance matrix elements. As a step towards addressing these challenges, we present a new formalism that perturbatively relates two- and four-particle finite-volume energies and matrix elements to the couplings of the infinite-volume theory. Our method works at leading order in the two-to-two, four-to-four, and two-to-four couplings of the theory, while also capturing the leading finite-volume effects associated with two-to-two subprocess scattering in the four-particle sector. The result takes the form of a quantization condition which we implement numerically to produce a plot of volume-dependent energies for center-of-mass energies up to the six-particle threshold. The solutions exhibit a clear signature of two- and…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Particle physics theoretical and experimental studies · Nuclear physics research studies
