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移动光阱拉动粒子的平衡理论。

Equilibrium theory for a particle pulled by a moving optical trap.

作者信息

Astumian R Dean

机构信息

University of Maine, Orono, Maine 04469-5709, USA.

出版信息

J Chem Phys. 2007 Mar 21;126(11):111102. doi: 10.1063/1.2711174.

Abstract

The viscous drag on a colloidal particle pulled through solution by an optical trap is large enough that on experimentally relevant time scales the mechanical force exerted by the trap is equal and opposite the viscous drag force. The rapid mechanical equilibration allows the system to be modeled using equilibrium theory where the effects of the energy dissipation (thermodynamic disequilibrium) show up only in the coordinate transformations that map the system from the laboratory frame of reference, relative to which the particle is moving, to a frame of reference in which the particle is, on average, stationary and on which the stochastic dynamics is governed by a canonical equilibrium distribution function. The simple equations in the stationary frame can be analyzed using the Onsager-Machlup theory for stochastic systems and provide generalizations of equilibrium and near equilibrium concepts such as detailed balance and fluctuation-dissipation relations applicable to a wide range of systems including molecular motors, pumps, and other nanoscale machines.

摘要

通过光阱在溶液中拉动的胶体颗粒上的粘性阻力足够大,以至于在实验相关的时间尺度上,光阱施加的机械力与粘性阻力大小相等、方向相反。快速的机械平衡使得该系统可以用平衡理论来建模,其中能量耗散(热力学非平衡)的影响仅出现在坐标变换中,这些坐标变换将系统从相对于颗粒运动的实验室参考系映射到一个颗粒平均静止的参考系,在这个参考系中,随机动力学由一个正则平衡分布函数支配。静止参考系中的简单方程可以用随机系统的昂萨格 - 马赫卢普理论进行分析,并提供平衡和近平衡概念的推广,如适用于包括分子马达、泵和其他纳米级机器在内的广泛系统的细致平衡和涨落 - 耗散关系。

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