University of Cambridge
Dynamical aspects of quantum information and classical simulability
Abstract
dc:description.abstractQuantum many-body dynamics describes how systems of interacting particles evolve, often giving rise to collective phenomena with no classical counterpart. Understanding these dynamical phases of matter is believed to be typically hard. To simulate such dynamics, we need to either emulate it on a quantum device—acting as a quantum simulator—or, by exploiting its underlying mathematical structure, find analytical solutions and efficient classical methods. This thesis explores how the dynamics of quantum information underpins complex quantum phenomena that can surpass classical simulability. In particular, we investigate when quantum simulators might be the most resource-efficient means of simulating quantum dynamics, and highlight dynamical phases that can be useful in benchmarking such devices. We first discuss phase transitions in classical simulability for systems evolving under unitary dynamics interspersed with measurements—key operations implemented on quantum simulators. Several quantum resources, including entanglement and magic, are believed to be necessary for quantum computational advantage. While entanglement dynamics and its phase transitions induced by the frequency of measurements have been extensively studied recently, here we mainly focus on classifying dynamical phases in terms of magic. Through analytical arguments and numerical experiments, we find distinct measurement-induced phase transitions in magic, entanglement, and simulability (either by stabiliser or tensor networks methods). Notably, we unveil robust dynamical phases which are low in magic—and thus efficiently classically simulable—despite being highly entangled. We then consider, in a classically simulable (free-fermionic) setup, a deep form of thermalisation. Conventional quantum thermalisation asks whether, at late times under unitary dynamics, a small subsystem's physical observables attain thermal expectation values. However, current quantum simulators enable access to the entire system and the correlations between subsystems. By leveraging such correlations, we rigorously demonstrate that, across an ensemble of states corresponding to all possible experimental snapshots, the full probability distribution of observables becomes universal. Since free fermions are efficiently classically simulable, our results can be used to benchmark quantum simulators. Moreover, we argue that probing this phenomenon might be experimentally feasible for weakly interacting systems, despite the exponentially many possible snapshots, if the dynamics remains close to this free-fermionic regime. These findings enhance our understanding of classical simulation complexity, and offer insights into novel dynamical phases and the potential uses of quantum simulators.
Degree
thesis:*- Name dc:type.qualificationname
- Doctor of Philosophy (PhD)
- Level dc:type.qualificationlevel
- Doctoral
- Grantor dc:publisher.institution
- University of Cambridge
- Year dc:date.issued
- 2025
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Bejan, Mircea-Andrei
- Advisor dc:contributor.advisor
-
- Beri, Benjamin
Subjects
dc:subject × 5Rights
dc:rightsIdentifiers
dc:identifier.*- DOI dc:identifier.doi
- https://doi.org/10.17863/CAM.122018
- OAI identifier oai:identifier
- oai:www.repository.cam.ac.uk:1810/390469