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Nonsinusoidal current and current reversals in a gating ratchet.

机译:非正弦电流和选通棘轮中的电流反转。

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摘要

The ability to implement adiabatic processes in the mesoscale is of key importance in the study of artificial or biological micro- and nanoengines. Microadiabatic processes have been elusive to experimental implementation due to the difficulty in isolating Brownian particles from their fluctuating environment. Here we report on the experimental realization of a microscopic quasistatic adiabatic process employing a trapped Brownian particle. We circumvent the complete isolation of the Brownian particle by designing a protocol where both characteristic volume and temperature of the system are changed in such a way that the entropy of the system is conserved along the process. We compare the protocols that follow from either the overdamped or underdamped descriptions, demonstrating that the latter is mandatory in order to obtain a vanishing average heat flux to the particle. We provide analytical expressions for the distributions of the fluctuating heat and entropy and verify them experimentally. Our protocols could serve to implement the first microscopic engine that is able to attain the fundamental limit for the efficiency set by Carnot.
机译:在中尺度上实现绝热过程的能力在研究人工或生物的微型和纳米引擎中至关重要。由于难以将布朗粒子与波动的环境隔离开来,微绝热工艺难以进行实验。在这里,我们报告使用捕获的布朗粒子的微观准静态绝热过程的实验实现。我们通过设计协议来规避布朗粒子的完全隔离,在该协议中,系统的特征体积和温度都将发生改变,以使系统的熵在整个过程中得以保留。我们比较了过阻尼或欠阻尼的描述所遵循的协议,表明后者是强制性的,以便获得消失的粒子平均热通量。我们提供了波动热和熵的分布的解析表达式,并通过实验进行了验证。我们的协议可以用来实现第一个能够达到卡诺设定的效率基本极限的微观引擎。

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