Entanglement Dynamics in Splitting Quenches

ORAL

Abstract

Entanglement dynamics should provide a salient probe of the quark-hadron transition in heavy-ion collisions (2211.16265). Since the quark-gluon plasma is in a pure state and QCD dynamics are unitary, the final state of a heavy ion collision –a collection of spatially distant hadrons– should also be a highly entangled pure state. How should entanglement entropy evolve for a highly excited field theory state that splits into multiple hadrons? I will discuss recent work on a holographic toy model of the hadronization process based on 1+1D CFTs that break into multiple discrete domains. These "splitting quenches" probe entanglement entropy dynamics at strong coupling. In my talk I will explain some technical details of the calculations and insights gleaned for hadronization.

*JDL would like to acknowledge support from the U.S. Department of Energy Office of Science under research grant DE-FG02-05ER41367

Publication: Lap, J.D., Müller, B., Schäfer, A. et al. Two splits, three ways: advances in double splitting quenches. J. High Energ. Phys. 2024, 205 (2024). https://doi.org/10.1007/JHEP05(2024)205

Presenters

  • Joseph Dominicus Lap

Authors

  • Joseph Dominicus Lap

  • Berndt Mueller

    • Duke University
  • Andreas Schäfer

    • Regensburg University
  • Clemens Seidl

    • Regensburg University