We study the non-equilibrium properties of non interacting active Ornstein–Uhlenbeck particles (AOUP) subject to an external nonuniform field using a Fokker–Planck approach with a focus on the linear response and time- correlation functions. In particular, we compare dierent methods to compute these functions including the unified colored noise approximation (UCNA). The AOUP model, described by the position of the particle and the active force acting on it, is usually mapped into a Markovian process, describing the motion of a fictitious passive particle in terms of its position and velocity, where the eect of the activity is transferred into a position-dependent friction. We show that the form of the response function of the AOUP depends on whether we put the perturbation on the position and keep unperturbed the active force in the original variables or perturb the position and maintain unperturbed the velocity in the transformed variables. Indeed, as a result of the change of variables the perturbation on the position becomes a perturbation both on the position and on the fictitious velocity. We test these predictions by considering the response for three types of convex potentials: quadratic, quartic and double-well potential. Moreover, by comparing the response of the AOUP model with the corresponding response of the UCNA model we conclude that although the stationary properties are fairly well approximated by the UCNA, the non equilibrium properties are not, an eect which is not negligible when the persistence time is large.

Linear response and correlation of a self-propelled particle in the presence of external fields

Marconi, Umberto Marini Bettolo;
2018-01-01

Abstract

We study the non-equilibrium properties of non interacting active Ornstein–Uhlenbeck particles (AOUP) subject to an external nonuniform field using a Fokker–Planck approach with a focus on the linear response and time- correlation functions. In particular, we compare dierent methods to compute these functions including the unified colored noise approximation (UCNA). The AOUP model, described by the position of the particle and the active force acting on it, is usually mapped into a Markovian process, describing the motion of a fictitious passive particle in terms of its position and velocity, where the eect of the activity is transferred into a position-dependent friction. We show that the form of the response function of the AOUP depends on whether we put the perturbation on the position and keep unperturbed the active force in the original variables or perturb the position and maintain unperturbed the velocity in the transformed variables. Indeed, as a result of the change of variables the perturbation on the position becomes a perturbation both on the position and on the fictitious velocity. We test these predictions by considering the response for three types of convex potentials: quadratic, quartic and double-well potential. Moreover, by comparing the response of the AOUP model with the corresponding response of the UCNA model we conclude that although the stationary properties are fairly well approximated by the UCNA, the non equilibrium properties are not, an eect which is not negligible when the persistence time is large.
2018
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Descrizione: arXiv:1801.04168 [cond-mat.stat-mech]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11581/426835
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