Diffusion of interacting particles in a channel with reflection boundary conditions.
Narender Khatri,P. S. Burada +1 more
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TL;DR: These findings, which are a signature of the entropic nature of the system, can be useful to understand the transport of small particles or molecules in systems such as microfluidic channels, membrane pores, and molecular sieves.
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Abstract: The diffusive transport of biased Brownian particles in a two-dimensional symmetric channel is investigated numerically considering both the no-flow and the reflection boundary conditions at the channel boundaries. Here, the geometrical confinement leads to entropic barriers which effectively control the transport properties of the particles. We show that compared to no-flow boundary conditions, the transport properties exhibit distinct features in a channel with reflection boundary conditions. For example, the nonlinear mobility exhibits a nonmonotonic behavior as a function of the scaling parameter f, which is a ratio of the work done to the particles to available thermal energy. Also, the effective diffusion exhibits a rapidly increasing behavior at higher f. The nature of reflection, i.e., elastic or inelastic, also influences the transport properties firmly. We find that inelastic reflections increase both the mobility and the effective diffusion for smaller f. In addition, by including the short range interaction force between the Brownian particles, the mobility decreases and the effective diffusion increases for various values of f. These findings, which are a signature of the entropic nature of the system, can be useful to understand the transport of small particles or molecules in systems such as microfluidic channels, membrane pores, and molecular sieves.
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Citations
Confined diffusion in a random Lorentz gas environment.
Narender Khatri,P. S. Burada +1 more
TL;DR: The diffusive behavior of biased Brownian particles in a two dimensional confined geometry filled with the freezing obstacles is studied and a relation between η and f is found which provides an estimate of the minimum η up to a critical scaling parameter f_{c} beyond which the Fick-Jacobs description is invalid.
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Entropic stochastic resonance induced by a transverse driving force.
TL;DR: In this article, the authors investigated the ESR phenomenon with the presence of a time-periodic force in the transverse direction and showed that it can survive even if there is no static bias force in any direction, just if a transverse driving field is applied.
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Inertial effects on rectification and diffusion of active Brownian particles in an asymmetric channel.
Narender Khatri,Raymond Kapral +1 more
TL;DR: In this paper , the authors study how inertia affects the rectification and diffusion of self-propelled particles in a two-dimensional, asymmetric channel and show that most of the particles accumulate at the channel walls as the masses of the objects increase.
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Mass separation in an asymmetric channel.
Narender Khatri,P. S. Burada +1 more
TL;DR: In this article, the authors present a mechanism to sort out particles of different masses in an asymmetric channel, where the entropic barriers arise naturally and control the diffusion of these particles.
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Energetic and entropic vibrational resonance with a time-delayed feedback
TL;DR: In this paper , the EEVR with time-delayed feedback was found in a two-dimensional boundary and the mechanism corresponded to dynamical transition from a multi-stable state to a monostable state caused by the high-frequency signal was elucidated.
4
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