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Fundamental Work Cost of Quantum Processes

机译:量子过程的基本工作成本

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Information-theoretic approaches provide a promising avenue for extending the laws of thermodynamics to the nanoscale. Here, we provide a general fundamental lower limit, valid for systems with an arbitrary Hamiltonian and in contact with any thermodynamic bath, on the work cost for the implementation of any logical process. This limit is given by a new information measure—the coherent relative entropy—which accounts for the Gibbs weight of each microstate. The coherent relative entropy enjoys a collection of natural properties justifying its interpretation as a measure of information and can be understood as a generalization of a quantum relative entropy difference. As an application, we show that the standard first and second laws of thermodynamics emerge from our microscopic picture in the macroscopic limit. Finally, our results have an impact on understanding the role of the observer in thermodynamics: Our approach may be applied at any level of knowledge—for instance, at the microscopic, mesoscopic, or macroscopic scales—thus providing a formulation of thermodynamics that is inherently relative to the observer. We obtain a precise criterion for when the laws of thermodynamics can be applied, thus making a step forward in determining the exact extent of the universality of thermodynamics and enabling a systematic treatment of Maxwell-demon-like situations.
机译:信息理论方法为将热力学定律扩展到纳米级提供了有希望的途径。在这里,我们提供了一个通用的基本下限,该下限对于具有任意哈密顿量且与任何热力学浴池接触的系统均有效,适用于执行任何逻辑过程的工作成本。这一限制由新的信息度量(相干相对熵)给出,该度量解释了每个微状态的吉布斯权重。相干相对熵享有自然性质的集合,证明其作为信息量度的解释是正确的,并且可以理解为量子相对熵差的概括。作为一种应用,我们证明了在宏观范围内从我们的微观图片中出现了热力学的第一定律和第二定律。最后,我们的结果对理解观察者在热力学中的作用有影响:我们的方法可能适用于任何知识水平,例如在微观,中观或宏观尺度上,从而提供了固有的热力学公式相对于观察者。我们获得了何时可以应用热力学定律的精确标准,从而在确定热力学通用性的确切范围方面迈出了一步,并能够对麦克斯韦-戴德蒙德样情况进行系统的处理。

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