Experimentally probing Landauer's principle in the quantum many-body regime
arXiv:2407.21690 · doi:10.1038/s41567-025-02930-9
Abstract
Landauer's principle bridges information theory and thermodynamics by linking the entropy change of a system during a process to the average energy dissipated to its environment. Although typically discussed in the context of erasing a single bit of information, Landauer's principle can be generalised to characterise irreversibility in out-of-equilibrium processes, such as those involving complex quantum many-body systems. Specifically, the relationship between the entropy change of the system and the energy dissipated to its environment can be decomposed into changes in quantum mutual information and a difference in relative entropies of the environment. Here we experimentally probe Landauer's principle in the quantum many-body regime using a quantum field simulator of ultracold Bose gases. Employing a dynamical tomographic reconstruction scheme, we track the temporal evolution of the quantum field following a global mass quench from a massive to massless Klein-Gordon model and analyse the thermodynamic and information-theoretic contributions to a generalised entropy production for various system-environment partitions of the composite system. Our results verify the quantum field theoretical calculations, interpreted using a semi-classical quasiparticle picture. Our work demonstrates the ability of ultracold atom-based quantum field simulators to experimentally investigate quantum thermodynamics.
References in corpus (10)
- Experimental Observation of a Generalized Gibbs Ensemble
- Irreversible entropy production, from quantum to classical
- Long Phase Coherence Time and Number Squeezing of two Bose-Einstein Condensates on an Atom Chip
- Extension of Bogoliubov theory to quasi-condensates
- Radio-frequency dressed state potentials for neutral atoms
- Validity of the GGE for quantum quenches from interacting to noninteracting models
- Experimental verification of the area law of mutual information in a quantum field simulator
- Experimental Observation of Curved Light-Cones in a Quantum Field Simulator
- Operational definition of the temperature of a quantum state
- Hamiltonian Learning in Quantum Field Theories