Zhu Qian, Zhou Yang, Marchesoni Fabio, Zhang H P
School of Physics and Astronomy and Institute of Natural Sciences, Shanghai Jiao Tong University, Shanghai 200240, China.
Center for Phononics and Thermal Energy Science, School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.
Phys Rev Lett. 2022 Aug 26;129(9):098001. doi: 10.1103/PhysRevLett.129.098001.
We investigate the dynamical properties of a colloidal particle in a double cavity. Without external driving, the particle hops between two free-energy minima with transition mean time depending on the system's entropic and energetic barriers. We then drive the particle with a periodic force. When the forcing period is set at twice the transition mean time, a statistical synchronization between particle motion and forcing phase marks the onset of a stochastic resonance mechanism. Comparisons between experimental results and predictions from the Fick-Jacobs theory and Brownian dynamics simulation reveal significant hydrodynamic effects, which change both resonant amplification and noise level. We further show that hydrodynamic effects can be incorporated into existing theory and simulation by using an experimentally measured particle diffusivity.
我们研究了双腔中胶体粒子的动力学性质。在没有外部驱动的情况下,粒子在两个自由能极小值之间跳跃,跃迁平均时间取决于系统的熵垒和能垒。然后我们用周期力驱动粒子。当强迫周期设定为跃迁平均时间的两倍时,粒子运动与强迫相位之间的统计同步标志着随机共振机制的开始。实验结果与菲克 - 雅各布斯理论及布朗动力学模拟预测之间的比较揭示了显著的流体动力学效应,这些效应改变了共振放大和噪声水平。我们进一步表明,通过使用实验测量的粒子扩散率,可以将流体动力学效应纳入现有的理论和模拟中。