II. Institut für Theoretische Physik, Universität Stuttgart, 70550 Stuttgart, Germany.
Phys Rev Lett. 2020 Dec 31;125(26):260604. doi: 10.1103/PhysRevLett.125.260604.
Thermodynamic uncertainty relations yield a lower bound on entropy production in terms of the mean and fluctuations of a current. We derive their general form for systems under arbitrary time-dependent driving from arbitrary initial states and extend these relations beyond currents to state variables. The quality of the bound is discussed for various types of observables for an interacting pair of colloidal particles in a moving laser trap and for the dynamical unfolding of a small protein. Since the input for evaluating these bounds does not require specific knowledge of the system or its coupling to the time-dependent control, they should become widely applicable tools for thermodynamic inference in time-dependently driven systems.
热力学不确定性关系以电流的平均值和涨落为条件,给出了熵产生的下限。我们从任意初始状态出发,为受任意时变驱动的系统推导出了它们的一般形式,并将这些关系从电流扩展到了状态变量。对于在移动激光阱中相互作用的胶体粒子对以及小分子的动态展开,我们讨论了各种类型的可观测量的边界质量。由于评估这些边界所需的输入并不需要特定于系统或其与时变控制的耦合的知识,因此它们应该成为在时变驱动系统中进行热力学推断的广泛适用工具。