Liu Xiangjing, Ebler Daniel, Dahlsten Oscar
Shenzhen Institute for Quantum Science and Engineering and Department of Physics, Southern University of Science and Technology, Shenzhen 518055, China.
Theory Lab, Central Research Institute, 2012 Labs, Huawei Technology Co. Ltd., Hong Kong Science Park, Hong Kong SAR.
Phys Rev Lett. 2022 Dec 2;129(23):230604. doi: 10.1103/PhysRevLett.129.230604.
We address a new setting where the second law is under question: thermalizations in a quantum superposition of causal orders, enacted by the so-called quantum switch. This superposition has been shown to be associated with an increase in the communication capacity of the channels, yielding an apparent violation of the data-processing inequality and a possibility to separate hot from cold. We analyze the thermodynamics of this information capacity increasing process. We show how the information capacity increase is compatible with thermodynamics. We show that there may indeed be an information capacity increase for consecutive thermalizations obeying the first and second laws of thermodynamics if these are placed in an indefinite order and moreover that only a significantly bounded increase is possible. The increase comes at the cost of consuming a thermodynamic resource, the free energy of coherence associated with the switch.
我们探讨了一个新的情境,其中第二定律受到质疑:由所谓的量子开关实现的因果序量子叠加中的热化过程。这种叠加已被证明与信道通信容量的增加相关联,这显然违反了数据处理不等式,并有可能将热与冷分离。我们分析了这种信息容量增加过程的热力学。我们展示了信息容量的增加如何与热力学兼容。我们表明,如果将连续的热化过程以不确定的顺序排列,并且仅可能有显著受限的增加,那么遵循热力学第一和第二定律的连续热化过程确实可能存在信息容量的增加。这种增加是以消耗一种热力学资源为代价的,即与开关相关联的相干自由能。