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All States are Universal Catalysts in Quantum Thermodynamics

机译:所有状态都是量子热力学中的通用催化剂

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Quantum catalysis is a fascinating concept that demonstrates how certain transformations can only become possible when given access to a specific resource that has to be returned unaffected. It was first discovered in the context of entanglement theory, and since then, it has been applied in a number of resource-theoretic frameworks, including quantum thermodynamics. Although, in that case, the necessary (and sometimes also sufficient) conditions on the existence of a catalyst are known, almost nothing is known about the precise form of the catalyst state required by the transformation. In particular, it is not clear whether it has to have some special properties or be finely tuned to the desired transformation. In this work, we describe a surprising property of multicopy states: We show that in resource theories governed by majorization, all resourceful states are catalysts for all allowed transformations. In quantum thermodynamics, this means that the so-called “second laws of thermodynamics” do not require a fine-tuned catalyst; rather, any state, given sufficiently many copies, can serve as a useful catalyst. These analytic results are accompanied by several numerical investigations that indicate that neither a multicopy form nor a very-large-dimension catalyst is required to activate most allowed transformations catalytically.
机译:Quantum催化是一个迷人的概念,它展示了在给予不受影响的特定资源的访问时才能实现某些变换。首先在纠缠理论的背景下发现,从那时起,它已经应用于许多资源 - 理论框架,包括量子热力学。虽然在这种情况下,已知必要的(并且有时也足够的)条件是已知催化剂的存在性,但是对于转化所需的催化剂状态的精确形式几乎没有任何内容。特别是,目前尚不清楚它是否必须具有一些特殊属性或被精细调整到所需的转换。在这项工作中,我们描述了多拷贝态度的令人惊讶的财产:我们表明,在大多数化的资源理论中,所有有机化的状态都是所有允许转化的催化剂。在量子热力学中,这意味着所谓的“热力学第二定律”不需要微调催化剂;相反,任何州给予足够多的拷贝,可以用作有用的催化剂。这些分析结果伴随着几个数值研究,表明多核性形式和大尺寸催化剂都不需要催化激活最允许的变换。

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