Temperature-driven coherence resonance and stochastic resonance in a thermochemical system

被引:9
|
作者
Lemarchand, A. [1 ,2 ]
Gorecki, J. [3 ,4 ]
Gorecki, A. [5 ]
Nowakowski, B. [3 ,5 ]
机构
[1] Sorbonne Univ, Univ Paris 06, Lab Phys Theor Matiere Condensee, F-75252 Paris 05, France
[2] CNRS, LPTMC, UMR 7600, Paris, France
[3] Polish Acad Sci, Inst Phys Chem, PL-01224 Warsaw, Poland
[4] UKSW, Fac Math & Life Sci, Warsaw, Poland
[5] Warsaw Univ Life Sci, Phys Lab, PL-02776 Warsaw, Poland
来源
PHYSICAL REVIEW E | 2014年 / 89卷 / 02期
关键词
NOISE; MODEL;
D O I
10.1103/PhysRevE.89.022916
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
We perform the stochastic analysis of a thermochemical system using a master equation which describes a chemical reaction and includes discrete and continuous temperature jumps. We study the time evolution of the system selecting the temperature of the thermostat as an easily tunable control parameter. Depending on the thermostat temperature, the system can be in an excitable, oscillatory, or stationary regime. Stochastic time series for the system temperature are generated and the distributions of interspike intervals are analyzed in the three dynamical regimes separated by a homoclinic bifurcation and a Hopf bifurcation. Different constructive roles of internal fluctuations are exhibited. A noise-induced transition is observed in the vicinity of the Hopf bifurcation. Coherence resonance and stochastic resonance are found in the oscillatory regime. In a range of thermostat temperatures, a nontrivial behavior of the highly nonlinear system is revealed by the existence of both a minimum and a maximum in the scaled standard deviation of interspike intervals as a function of particle number. This high sensitivity to system size illustrates that controlling dynamics in nanoreactors may remain a difficult task.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Thermally driven single-electron stochastic resonance
    Kasai, Seiya
    NANOTECHNOLOGY, 2022, 33 (50)
  • [22] Stochastic resonance and vibrational resonance in an excitable system: The golden mean barrier
    Stan, Cristina
    Cristescu, C. P.
    Alexandroaei, D.
    Agop, M.
    CHAOS SOLITONS & FRACTALS, 2009, 41 (02) : 727 - 734
  • [23] Stochastic resonance driven by time-delayed feedback in a bistable system with colored noise
    Gu, X.
    EUROPEAN PHYSICAL JOURNAL D, 2012, 66 (03)
  • [24] Stochastic resonance in an under-damped bistable system driven by harmonic mixing signal
    Jin, Yan-Fei
    CHINESE PHYSICS B, 2018, 27 (05)
  • [25] Can stochastic resonance and coherence resonance describe CDW dynamics in quasi-one dimensional conductors?
    Dumas, Jean
    Marcus, Jacques
    PHYSICA B-CONDENSED MATTER, 2012, 407 (11) : 1750 - 1752
  • [26] Temperature-Driven Gapless Topological Insulator
    Goncalves, Miguel
    Ribeiro, Pedro
    Mondaini, Rubem
    Castro, Eduardo, V
    PHYSICAL REVIEW LETTERS, 2019, 122 (12)
  • [27] Concomitance of inverse stochastic resonance and stochastic resonance in a minimal bistable spiking neural circuit
    Zamani, AmirPasha
    Novikov, Nikita
    Gutkin, Boris
    COMMUNICATIONS IN NONLINEAR SCIENCE AND NUMERICAL SIMULATION, 2020, 82
  • [28] Stochastic resonance of charge carriers diffusing in a nonhomogeneous medium with nonhomogeneous temperature
    Aragie, Berhanu
    Tatek, Yergou B.
    Bekele, Mulugeta
    EUROPEAN PHYSICAL JOURNAL B, 2014, 87 (05)
  • [29] Coherence and anti-coherence resonance of corporation finance
    Zhong, Guang-Yan
    Li, Hai-Feng
    Li, Jiang-Cheng
    Mei, Dong-Cheng
    Tang, Nian-Sheng
    Long, Chao
    CHAOS SOLITONS & FRACTALS, 2019, 118 : 376 - 385
  • [30] Stochastic resonance in extended systems
    Wio, H. S.
    Revelli, J. A.
    Rodriguez, M. A.
    Deza, R. R.
    Izus, G. G.
    EUROPEAN PHYSICAL JOURNAL B, 2009, 69 (01) : 71 - 80