Entropic Barriers and the Kinetic Suppression of Topological Defects
- URL: http://arxiv.org/abs/2602.16777v1
- Date: Wed, 18 Feb 2026 19:00:02 GMT
- Title: Entropic Barriers and the Kinetic Suppression of Topological Defects
- Authors: Yi-Lin Tsao, Zhu-Xi Luo,
- Abstract summary: We study a complementary mechanism of entropic protection, in which defect nucleation is suppressed by coupling to auxiliary dimension reservoirs of $M$.<n>In the Ising chain, this produces a characteristic three-regime evolution of the correlation length as a function of temperature.<n>We show that entropic protection can nevertheless strongly enhance stabilization at finite system size.
- Score: 0.0
- License: http://creativecommons.org/licenses/by-nc-nd/4.0/
- Abstract: Many quantum phases, from topological orders to superfluids, are destabilized at finite temperature by the proliferation and motion of topological defects such as anyons or vortices. Conventional protection mechanisms rely on energetic gaps and fail once thermal fluctuations exceed the gap scale. Here we examine a complementary mechanism of entropic protection, in which defect nucleation is suppressed by coupling to mesoscopic auxiliary reservoirs of dimension $M$, generating an effective free-energy barrier that increases with temperature. In the Ising chain, this produces a characteristic three-regime evolution of the correlation length as a function of temperature - linear growth, entropy-controlled plateau, and eventual breakdown - indicating a general modification of defect behavior. Focusing on two spatial dimensions, where true finite-temperature topological order is forbidden in the thermodynamic limit, we show that entropic protection can nevertheless strongly enhance stabilization at finite system size, the regime directly relevant for quantum memory and experiments. Owing to the topological character of the defects, creation and transport are independently suppressed, yielding a double parametric reduction of logical errors in the entropic toric code and enhanced coherence when the framework is extended to Berezinskii-Kosterlitz-Thouless transitions. Entropic barriers thus provide a passive and scalable route to stabilizing quantum phases in experimentally relevant regimes. We propose an experimental setup for entropic toric code using dual species Rydberg arrays with dressing.
Related papers
- Evidence for a two-dimensional quantum glass state at high temperatures [108.88989889650607]
Disorder in quantum many-body systems can drive transitions between ergodic and non-ergodic phases.<n>We study an interacting spin model at finite temperature in a disordered landscape.<n>Our results show that there is a transition out of the ergodic phase in two-dimensional systems.
arXiv Detail & Related papers (2026-01-04T00:09:50Z) - On prethermal time crystals from semi-holography [42.64755341282408]
We show the existence of a pair of almost dissipationless oscillating modes at low temperatures in a hybrid quantum system.<n>We argue that these modes realize prethermal time-crystal behavior in semiholographic systems without fine-tuning.<n>We also find novel Gregory Laflamme type instabilities that lead to the formation of inhomogeneities at higher temperatures.
arXiv Detail & Related papers (2025-12-25T14:32:33Z) - Observation of non-Hermitian topology in cold Rydberg quantum gases [42.41909362660157]
We experimentally demonstrate non-Hermitian spectra topology in a dissipative Rydberg atomic gas.<n>By increasing the interaction strength, the system evolves from Hermitian to non-Hermitian regime.<n>This work establishes cold Rydberg gases as a versatile platform for exploring the rich interplay between non-Hermitian topology, strong interactions, and dissipative quantum dynamics.
arXiv Detail & Related papers (2025-09-30T13:44:43Z) - Quantum tunneling and anti-tunneling across entropic barriers [44.99833362998488]
We study the dynamics of a quantum particle in a constricted two-dimensional channel.<n>We analyze how the onset of quantum corrections impacts the (semi-intuitive) high-temperature behaviour, as temperature is lowered.
arXiv Detail & Related papers (2025-05-06T19:55:55Z) - Violation of the thermodynamic uncertainty relation in quantum collisional models [0.0]
We investigate the thermodynamic uncertainty relation within a quantum collisional model.<n>For the Markovian dynamics, we examine the classical and quantum TUR bounds in the non-equilibrium steady-state regime.<n>For the two non-Markovian approaches, we find that both the degree and type of non-Markovianity crucially affect TUR violations.
arXiv Detail & Related papers (2024-12-31T19:58:54Z) - Chaotic and quantum dynamics in driven-dissipative bosonic chains [0.0]
Thermalization in quantum many-body systems unfolds over timescales governed by intrinsic relaxation mechanisms.<n>We investigate this phenomenon in the nonequilibrium steady state (NESS) of a Bose-Hubbard chain subject to coherent driving and dissipation at its boundaries.<n>We argue that similar mechanisms are likely to emerge in a broad class of extended driven-dissipative systems.
arXiv Detail & Related papers (2024-09-18T18:00:00Z) - Non-thermal eigenstates and slow relaxation in quantum Fredkin spin chains [0.0]
We study the dynamics and thermalization of the Fredkin spin chain, a system with local three-body interactions.
We consider deformations away from its point in order to tune between regimes where kinetic energy dominates those where potential energy does.
arXiv Detail & Related papers (2024-03-06T19:00:16Z) - Limits for coherent optical control of quantum emitters in layered
materials [49.596352607801784]
coherent control of a two-level system is among the most essential challenges in modern quantum optics.
We use a mechanically isolated quantum emitter in hexagonal boron nitride to explore the individual mechanisms which affect the coherence of an optical transition under resonant drive.
New insights on the underlying physical decoherence mechanisms reveals a limit in temperature until which coherent driving of the system is possible.
arXiv Detail & Related papers (2023-12-18T10:37:06Z) - Sunburst quantum Ising model under interaction quench: entanglement and
role of initial state coherence [0.0]
We study the non-equilibrium dynamics of an isolated bipartite quantum system under interaction quench.
We show the importance of the role played by the coherence of the initial state in deciding the nature of thermalization.
arXiv Detail & Related papers (2022-12-23T11:57:47Z) - Indication of critical scaling in time during the relaxation of an open
quantum system [34.82692226532414]
Phase transitions correspond to the singular behavior of physical systems in response to continuous control parameters like temperature or external fields.
Near continuous phase transitions, associated with the divergence of a correlation length, universal power-law scaling behavior with critical exponents independent of microscopic system details is found.
arXiv Detail & Related papers (2022-08-10T05:59:14Z) - Clean two-dimensional Floquet time-crystal [68.8204255655161]
We consider the two-dimensional quantum Ising model, in absence of disorder, subject to periodic imperfect global spin flips.
We show by a combination of exact diagonalization and tensor-network methods that the system can sustain a spontaneously broken discrete time-translation symmetry.
We observe a non-perturbative change in the decay rate of the order parameter, which is related to the long-lived stability of the magnetic domains in 2D.
arXiv Detail & Related papers (2022-05-10T13:04:43Z) - Fast Thermalization from the Eigenstate Thermalization Hypothesis [69.68937033275746]
Eigenstate Thermalization Hypothesis (ETH) has played a major role in understanding thermodynamic phenomena in closed quantum systems.
This paper establishes a rigorous link between ETH and fast thermalization to the global Gibbs state.
Our results explain finite-time thermalization in chaotic open quantum systems.
arXiv Detail & Related papers (2021-12-14T18:48:31Z) - Critical non-Hermitian Skin Effect [2.6109033135086777]
This work uncovers a new class of criticality where eigenenergies and eigenstates of non-Hermitian lattice systems jump discontinuously across a critical point in the thermodynamic limit.
We present stimulating examples with anomalous scaling behavior regarding spectrum, correlation functions, entanglement entropy, and scale-free wavefunctions that decay exponentially rather than power-law.
arXiv Detail & Related papers (2020-03-06T05:48:46Z) - Stabilizing two-dimensional quantum scars by deformation and
synchronization [0.0]
We propose a general framework for escaping or delaying the emergence of the thermal state in two-dimensional (2D) arrays of Rydberg atoms.
We demonstrate that these mechanisms allow to realize robust quantum scars in various two-dimensional lattices.
arXiv Detail & Related papers (2020-03-05T18:54:19Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.