论文标题

被动状态和霍夫曼的部分顺序在量子热力学中

Partial order on passive states and Hoffman majorization in quantum thermodynamics

论文作者

Singh, Uttam, Das, Siddhartha, Cerf, Nicolas J.

论文摘要

被动状态,即无法通过单一操作提取任何工作的那些状态,在量子热力学的基础和应用中起着重要作用。他们概括了熟悉的吉布斯热状态,在张量产品下,唯一的被动状态是稳定的。在这里,我们在一组被动状态下介绍了一个部分订单,该订单捕获了被动状态几乎比另一个更酷的想法。我们通过定义相对被动性的概念而建立的部分顺序,基于虚拟温度(例如,根据其温度比较热状态)在被动状态之间进行了细粒度的比较。然后,我们表征相对于某些固定输入和输出被动状态,几乎较冷的状态下关闭的量子操作。将活性(即,即非态度)视为一种资源,我们的主要结果是在这些相对具有被动率的操作下的一类纯活动状态的必要条件。由于霍夫曼引起的非侵蚀媒介,这种情况对多数化关系具有量子热力学含义。然后,在相对免疫保护操作下的最大可提取工作表现出等于这些纯活性状态的成真。最后,我们能够完全表征更简单的量子系统情况下的被动性保护操作,从而在被动性保存量子量操作下得出状态互换条件。这项工作的前景是通过超越热操作的量子操作来提取工作的一般资源理论框架。

Passive states, i.e., those states from which no work can be extracted via unitary operations, play an important role in the foundations and applications of quantum thermodynamics. They generalize the familiar Gibbs thermal states, which are the sole passive states being stable under tensor product. Here, we introduce a partial order on the set of passive states that captures the idea of a passive state being virtually cooler than another one. This partial order, which we build by defining the notion of relative passivity, offers a fine-grained comparison between passive states based on virtual temperatures (just like thermal states are compared based on their temperatures). We then characterize the quantum operations that are closed on the set of virtually cooler states with respect to some fixed input and output passive states. Viewing the activity, i.e., non-passivity, of a state as a resource, our main result is then a necessary and sufficient condition on the transformation of a class of pure active states under these relative passivity-preserving operations. This condition gives a quantum thermodynamical meaning to the majorization relation on the set of non-increasing vectors due to Hoffman. The maximum extractable work under relative passivity-preserving operations is then shown to be equal to the ergotropy of these pure active states. Finally, we are able to fully characterize passivity-preserving operations in the simpler case of qubit systems, and hence to derive a state interconversion condition under passivity-preserving qubit operations. The prospect of this work is a general resource-theoretical framework for the extractable work via quantum operations going beyond thermal operations.

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