Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System
The stabilizing effect of quantum fluctuations on the escape process and the relaxation dynamics from a quantum metastable state are investigated. Specifically, the quantum dynamics of a multilevel bistable system coupled to a bosonic Ohmic thermal bath in strong dissipation regime is analyzed. The...
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doaj-b65c4c7298a347fa97c282f14c981c932020-11-24T23:04:17ZengMDPI AGEntropy1099-43002018-03-0120422610.3390/e20040226e20040226Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum SystemBernardo Spagnolo0Angelo Carollo1Davide Valenti2Dipartimento di Fisica e Chimica, Group of Interdisciplinary Theoretical Physics, Università di Palermo and CNISM, Unità di Palermo, Viale delle Scienze, Edificio 18, I-90128 Palermo, ItalyDipartimento di Fisica e Chimica, Group of Interdisciplinary Theoretical Physics, Università di Palermo and CNISM, Unità di Palermo, Viale delle Scienze, Edificio 18, I-90128 Palermo, ItalyDipartimento di Fisica e Chimica, Group of Interdisciplinary Theoretical Physics, Università di Palermo and CNISM, Unità di Palermo, Viale delle Scienze, Edificio 18, I-90128 Palermo, ItalyThe stabilizing effect of quantum fluctuations on the escape process and the relaxation dynamics from a quantum metastable state are investigated. Specifically, the quantum dynamics of a multilevel bistable system coupled to a bosonic Ohmic thermal bath in strong dissipation regime is analyzed. The study is performed by a non-perturbative method based on the real-time path integral approach of the Feynman-Vernon influence functional. We consider a strongly asymmetric double well potential with and without a monochromatic external driving, and with an out-of-equilibrium initial condition. In the absence of driving we observe a nonmonotonic behavior of the escape time from the metastable region, as a function both of the system-bath coupling coefficient and the temperature. This indicates a stabilizing effect of the quantum fluctuations. In the presence of driving our findings indicate that, as the coupling coefficient γ increases, the escape time, initially controlled by the external driving, shows resonant peaks and dips, becoming frequency-independent for higher γ values. Moreover, the escape time from the metastable state displays a nonmonotonic behavior as a function of the temperature, the frequency of the driving, and the thermal-bath coupling, which indicates the presence of a quantum noise enhanced stability phenomenon. Finally, we investigate the role of different spectral densities, both in sub-Ohmic and super-Ohmic dissipation regime and for different cutoff frequencies, on the relaxation dynamics from the quantum metastable state. The results obtained indicate that, in the crossover dynamical regime characterized by damped intrawell oscillations and incoherent tunneling, the spectral properties of the thermal bath influence non-trivially the short time behavior and the time scales of the relaxation dynamics from the metastable state.http://www.mdpi.com/1099-4300/20/4/226Caldeira-Leggett modelmetastable potentialdiscrete variable representationnoise enhanced stabilityresonant activationtunnelingquantum Zeno dynamicsquantum systems with finite Hilbert spacefunctional analytical methodsopen systemsquantum statistical methods |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Bernardo Spagnolo Angelo Carollo Davide Valenti |
spellingShingle |
Bernardo Spagnolo Angelo Carollo Davide Valenti Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System Entropy Caldeira-Leggett model metastable potential discrete variable representation noise enhanced stability resonant activation tunneling quantum Zeno dynamics quantum systems with finite Hilbert space functional analytical methods open systems quantum statistical methods |
author_facet |
Bernardo Spagnolo Angelo Carollo Davide Valenti |
author_sort |
Bernardo Spagnolo |
title |
Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System |
title_short |
Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System |
title_full |
Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System |
title_fullStr |
Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System |
title_full_unstemmed |
Enhancing Metastability by Dissipation and Driving in an Asymmetric Bistable Quantum System |
title_sort |
enhancing metastability by dissipation and driving in an asymmetric bistable quantum system |
publisher |
MDPI AG |
series |
Entropy |
issn |
1099-4300 |
publishDate |
2018-03-01 |
description |
The stabilizing effect of quantum fluctuations on the escape process and the relaxation dynamics from a quantum metastable state are investigated. Specifically, the quantum dynamics of a multilevel bistable system coupled to a bosonic Ohmic thermal bath in strong dissipation regime is analyzed. The study is performed by a non-perturbative method based on the real-time path integral approach of the Feynman-Vernon influence functional. We consider a strongly asymmetric double well potential with and without a monochromatic external driving, and with an out-of-equilibrium initial condition. In the absence of driving we observe a nonmonotonic behavior of the escape time from the metastable region, as a function both of the system-bath coupling coefficient and the temperature. This indicates a stabilizing effect of the quantum fluctuations. In the presence of driving our findings indicate that, as the coupling coefficient γ increases, the escape time, initially controlled by the external driving, shows resonant peaks and dips, becoming frequency-independent for higher γ values. Moreover, the escape time from the metastable state displays a nonmonotonic behavior as a function of the temperature, the frequency of the driving, and the thermal-bath coupling, which indicates the presence of a quantum noise enhanced stability phenomenon. Finally, we investigate the role of different spectral densities, both in sub-Ohmic and super-Ohmic dissipation regime and for different cutoff frequencies, on the relaxation dynamics from the quantum metastable state. The results obtained indicate that, in the crossover dynamical regime characterized by damped intrawell oscillations and incoherent tunneling, the spectral properties of the thermal bath influence non-trivially the short time behavior and the time scales of the relaxation dynamics from the metastable state. |
topic |
Caldeira-Leggett model metastable potential discrete variable representation noise enhanced stability resonant activation tunneling quantum Zeno dynamics quantum systems with finite Hilbert space functional analytical methods open systems quantum statistical methods |
url |
http://www.mdpi.com/1099-4300/20/4/226 |
work_keys_str_mv |
AT bernardospagnolo enhancingmetastabilitybydissipationanddrivinginanasymmetricbistablequantumsystem AT angelocarollo enhancingmetastabilitybydissipationanddrivinginanasymmetricbistablequantumsystem AT davidevalenti enhancingmetastabilitybydissipationanddrivinginanasymmetricbistablequantumsystem |
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