论文标题
热锥的几何结构
Geometric structure of thermal cones
论文作者
论文摘要
热力学的第二定律在事件流中施加了基本的不对称性。所谓的热力学箭头的时间引入了一个顺序,将系统的状态空间分为过去,未来和无与伦比的区域。在这项工作中,我们分析了所得的热锥的结构,即给定状态可以热力学演变为(未来的热锥)或从(过去的热锥)演变而来的状态。具体而言,对于与热浴相互作用的系统的$ d $二维经典状态,我们发现了过去的热锥和无与伦比的区域的明确结构。此外,我们根据热锥体积给出的热力学单调酮提供了对其行为的详细分析。获得的结果也适用于其他基于大量的资源理论(例如纠缠和连贯性的理论),因为描述允许状态转换的部分排序与无限温度限制中的热力学顺序相反。最后,我们还概括了热锥的构建以解释概率转化。
The second law of thermodynamics imposes a fundamental asymmetry in the flow of events. The so-called thermodynamic arrow of time introduces an ordering that divides the system's state space into past, future and incomparable regions. In this work, we analyse the structure of the resulting thermal cones, i.e., sets of states that a given state can thermodynamically evolve to (the future thermal cone) or evolve from (the past thermal cone). Specifically, for a $d$-dimensional classical state of a system interacting with a heat bath, we find explicit construction of the past thermal cone and the incomparable region. Moreover, we provide a detailed analysis of their behaviour based on thermodynamic monotones given by the volumes of thermal cones. Results obtained apply also to other majorisation-based resource theories (such as that of entanglement and coherence), since the partial ordering describing allowed state transformations is then the opposite of the thermodynamic order in the infinite temperature limit. Finally, we also generalise the construction of thermal cones to account for probabilistic transformations.