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Eddy current and coupled landscapes for nonadiabatic and nonequilibrium complex system dynamics

机译:非绝热和非平衡复杂系统动力学的涡流和耦合态势

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摘要

Physical and biological systems are often involved with coupled processes of different time scales. In the system with electronic and atomic motions, for example, the interplay between the atomic motion along the same energy landscape and the electronic hopping between different landscapes is critical: the system behavior largely depends on whether the intralandscape motion is slower (adiabatic) or faster (nonadiabatic) than the interlandscape hopping. For general nonequilibrium dynamics where Hamiltonian or energy function is unknown a priori, the challenge is how to extend the concepts of the intra- and interlandscape dynamics. In this paper we establish a theoretical framework for describing global nonequilibrium and nonadiabatic complex system dynamics by transforming the coupled landscapes into a single landscape but with additional dimensions. On this single landscape, dynamics is driven by gradient of the potential landscape, which is closely related to the steady-state probability distribution of the enlarged dimensions, and the probability flux, which has a curl nature. Through an example of a self-regulating gene circuit, we show that the curl flux has dramatic effects on gene regulatory dynamics. The curl flux and landscape framework developed here are easy to visualize and can be used to guide further investigation of physical and biological nonequilibrium systems.
机译:物理和生物系统通常涉及不同时间范围的耦合过程。例如,在具有电子运动和原子运动的系统中,沿着相同能量分布的原子运动与不同分布之间的电子跳跃之间的相互作用至关重要:系统行为主要取决于景观内运动是较慢(绝热)还是较快(非绝热)比跨境跳跃。对于先验未知的哈密顿量或能量函数的一般非平衡动力学,面临的挑战是如何扩展景观内和景观间动力学的概念。在本文中,我们通过将耦合的景观转换为单一的景观但具有附加的维度,建立了一个描述全局非平衡和非绝热复杂系统动力学的理论框架。在此单一景观上,动力学由潜在景观的坡度驱动,坡度与扩大维度的稳态概率分布以及具有卷曲性质的概率通量密切相关。通过一个自我调节基因电路的例子,我们证明了卷曲通量对基因调节动力学具有显着影响。这里开发的卷曲通量和景观框架很容易可视化,可以用来指导对物理和生物非平衡系统的进一步研究。

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