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An Information Theory Approach to Nonlinear, Nonequilibrium Thermodynamics

机译:非线性非平衡热力学的信息论方法

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Using the problem of ion channel thermodynamics as an example, we illustrate the idea of building up complex thermodynamic models by successively adding physical information. We present a new formulation of information algebra that generalizes methods of both information theory and statistical mechanics. From this foundation we derive a theory for ion channel kinetics, identifying a nonequilibrium ‘process’ free energy functional in addition to the well-known integrated work functionals. The Gibbs-Maxwell relation for the free energy functional is a Green-Kubo relation, applicable arbitrarily far from equilibrium, that captures the effect of non-local and time-dependent behavior from transient thermal and mechanical driving forces. Comparing the physical significance of the Lagrange multipliers to the canonical ensemble suggests definitions of nonequilibrium ensembles at constant capacitance or inductance in addition to constant resistance. Our result is that statistical mechanical descriptions derived from a few primitive algebraic operations on information can be used to create experimentally-relevant and computable models. By construction, these models may use information from more detailed atomistic simulations. Two surprising consequences to be explored in further work are that (in)distinguishability factors are automatically predicted from the problem formulation and that a direct analogue of the second law for thermodynamic entropy production is found by considering information loss in stochastic processes. The information loss identifies a novel contribution from the instantaneous information entropy that ensures non-negative loss.
机译:以离子通道热力学问题为例,我们说明了通过连续添加物理信息来建立复杂的热力学模型的想法。我们提出了一种信息代数的新表述,它概括了信息论和统计力学的方法。在此基础上,我们得出了离子通道动力学的理论,除了众所周知的集成功函数之外,还确定了非平衡的“过程”自由能函数。自由能函数的吉布斯-麦克斯韦关系是格林-久保关系,可任意应用,远离平衡,它从瞬态热力和机械驱动力中捕获了非局部和随时间变化的行为的影响。将拉格朗日乘数与规范集合的物理意义进行比较,可以得出在恒定电容或电感以及恒定电阻的情况下对非均衡集合的定义。我们的结果是,可以从对信息进行一些原始代数运算得到的统计机械描述用于创建与实验相关的可计算模型。通过构造,这些模型可以使用来自更详细的原子模拟的信息。在进一步的工作中要探索的两个令人惊讶的结果是,从问题表述中自动预测了可区分性因素,并且通过考虑随机过程中的信息损失找到了热力学熵产生第二定律的直接类似物。信息损失确定了来自瞬时信息熵的新贡献,从而确保了非负损失。

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