Papers
Topics
Authors
Recent
Gemini 2.5 Flash
Gemini 2.5 Flash
144 tokens/sec
GPT-4o
8 tokens/sec
Gemini 2.5 Pro Pro
46 tokens/sec
o3 Pro
4 tokens/sec
GPT-4.1 Pro
38 tokens/sec
DeepSeek R1 via Azure Pro
28 tokens/sec
2000 character limit reached

Revisiting boundary-driven non-equilibrium Markov dynamics in arbitrary potentials via supersymmetric quantum mechanics and explicit large deviations at various levels (2304.09518v2)

Published 19 Apr 2023 in cond-mat.stat-mech and math.PR

Abstract: For boundary-driven non-equilibrium Markov models of non-interacting particles in one dimension, either in continuous space with the Fokker-Planck dynamics involving an arbitrary force $F(x)$ and an arbitrary diffusion coefficient $D(x)$, or in discrete space with the Markov jump dynamics involving arbitrary nearest-neighbor transition rates $w(x \pm 1,x)$, the Markov generator can be transformed via an appropriate similarity transformation into a quantum supersymmetric Hamiltonian with many remarkable properties. In particular, the mapping from the boundary-driven non-equilibrium dynamics towards some dual equilibrium dynamics [J. Tailleur, J. Kurchan and V. Lecomte, J. Phys. A 41, 505001 (2008)] can be reinterpreted via the two corresponding quantum Hamiltonians that are supersymmetric partners of each other, with the same energy spectra. We describe the consequences for the spectral decomposition of the boundary-driven dynamics, and we give explicit expressions for the Kemeny times needed to converge towards the non-equilibrium steady states. Finally, we analyze the large deviations at various levels for empirical time-averaged observables over a large time-window $T$. We start with the always explicit Level 2.5 concerning the joint distribution of the empirical density and of the empirical flows, and we then consider the contractions towards lower levels. In particular, the rate function for the empirical current alone can be explicitly computed via the contraction from the Level 2.5 using the properties of the associated quantum supersymmetric Hamiltonians.

Summary

We haven't generated a summary for this paper yet.