13–16 Jul 2026
Queen Mary University of London, Mile End Campus
Europe/London timezone

Hilbert space fragmentation at the origin of disorder-free localisation in the lattice Schwinger model

16 Jul 2026, 15:00
20m
Drapers Lecture Theatre

Drapers Lecture Theatre

Contributed Talk Contributed talk

Speaker

Dr Jared Jeyaretnam (University of Nottingham)

Description

Lattice gauge theories, the discrete counterparts of continuum gauge theories, provide a rich framework for studying non-equilibrium quantum dynamics. Recent studies suggest disorder-free localization in the lattice Schwinger model, but its origin remains unclear.

Using a combination of analytical and numerical methods, we show that Hilbert space fragmentation emerges in the strong coupling limit, constraining particle dynamics and causing sharp jumps in entanglement entropy growth within charge sectors. By analyzing jump statistics, we find that entanglement growth follows a single-logarithmic or weak power-law dependence on time, rather than a double-logarithmic form. This suggests a single ergodicity-breaking regime that mimics many-body localization in finite systems due to fragmentation effects.

Our findings clarify the nature of disorder-free localization and its distinction from conventional many-body localization, highlighting how gauge constraints influence thermalization in lattice gauge theories. We further discuss the possibility of simulating the model on quantum hardware.

Reference: Jeyaretnam, J., Bhore, T., Osborne, J.J. et al. Hilbert space fragmentation at the origin of disorder-free localization in the lattice Schwinger model. Commun Phys 8, 172 (2025)

Author

Dr Jared Jeyaretnam (University of Nottingham)

Co-authors

Mr Tanmay Bhore (University of Leeds) Dr Jesse J Osborne (The University of Queensland) Jad C. Halimeh (Department of Physics and Arnold Sommerfeld Center for Theoretical Physics (ASC), Ludwig Maximilian University of Munich, 80333 Munich, Germany; Max Planck Institute of Quantum Optics, 85748 Garching, Germany; Munich Center for Quantum Science and Technology (MCQST), 80799 Munich, Germany; Department of Physics, College of Science, Kyung Hee University, Seoul 02447, Republic of Korea) Prof. Zlatko Papic (University of Leeds)

Presentation materials