论文标题
谐波链中的活动驱动运输
Activity driven transport in harmonic chains
论文作者
论文摘要
扩展系统的传输属性如何受到与活动储层耦合的影响是一个重要但实际上未探索的问题。在这里,我们在两个谐波振荡器连接的两个主动储层之间的能量运输中解决了这个问题。在边界振荡器上施加相关的随机力的储层的耦合导致了能量电流和动力学温度曲线的引人入胜的行为,我们将其精确地计算在热力学极限下。我们表明,随着储层的活性发生变化,固定活性电流(i)在非单调上发生了变化,导致负差分电导率(NDC),并且(ii)在活动驱动的某个有限值时表现出意外的方向反转。以二分法活性的示例,我们使用非平衡响应形式形式发现了NDC的物理起源。事实证明,动力学温度曲线在整体处保持均匀,并且可以以类似于热驱动的情况的形式表达。我们表明,尽管存在明显的相似性,但总体上不能始终如一地建造有效的热图像。但是,这样的图片出现在小型活动限制中,其中许多众所周知的结果被恢复。
How the transport properties of an extended system is affected by coupling to active reservoirs is a significant, yet virtually unexplored question. Here we address this issue in the context of energy transport between two active reservoirs connected by a chain of harmonic oscillators. The couplings to the reservoirs, which exert correlated stochastic forces on the boundary oscillators, lead to fascinating behavior of the energy current and kinetic temperature profile, which we compute exactly in the thermodynamic limit. We show that the stationary active current (i) changes non-monotonically as the activity of the reservoirs are changed, leading to a negative differential conductivity (NDC), and (ii) exhibits an unexpected direction reversal at some finite value of the activity drive. For the example of a dichotomous active force, we find the physical origin of the NDC using nonequilibrium response formalism. It turns out that the kinetic temperature profile remains uniform at the bulk, and can be expressed in a form similar to the thermally driven case. We show that despite this apparent similarity, no effective thermal picture can be consistently built in general. However, such a picture emerges in the small activity limit, where many of the well-known results are recovered.