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The correlation time of mesoscopic chemical clocks

机译:介观化学钟的相关时间

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A formula is proved for the correlation time of nonequilibrium chemical clocks in the presence of molecular noise. The correlation time is defined as the inverse of the damping rate of the autocorrelation functions of the chemical concentrations. Using the Hamilton-Jacobi method for stochastic systems as well as a Legendre transform from the Onsager-Machlup action to a reduced action depending only on the Hamilton-Jacobi pseudoenergy, the correlation time is given in the weak-noise liit in terms of the extensivity parameter, the period of oscillations, as well as the derivative of the period with respect to the pseudoenergy. Using this result, an estimation is obtained for the minimum number of molecules required for the oscillations of the chemical concentrations to remain correlated in time. This estimation puts a fundamental lower limit on the size of chemical clocks. For typical oscillators, the minimum number of molecules is estimated between ten and one hundred, which essentially corresponds to nanometric systems.
机译:证明了存在分子噪声时非平衡化学钟的相关时间的公式。相关时间定义为化学浓度自相关函数的阻尼率的倒数。使用Hamilton-Jacobi方法处理随机系统,以及从Onsager-Machlup动作到Legendre变换进行Legendre转换,仅依赖于Hamilton-Jacobi伪能量,相关时间以扩展性的形式在弱噪声范围内给出参数,振荡周期以及相对于伪能量的周期导数。利用该结果,获得对于使化学浓度的振荡保持及时相关所需的最小分子数的估计。该估计为化学钟的尺寸设置了一个基本的下限。对于典型的振荡器,估计的最小分子数量在十到一百之间,这基本上对应于纳米系统。

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