热力学不确定性关系是量子热力学的一个基本方面

A. Artamonov, Еvgeny Plotnikov
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引用次数: 2

摘要

本文论述了温度和能量的热力学波动的物理学。这些波动是相互关联的,因此可以影响各种微观和宏观系统。结果表明,在超导物理、量子计算和其他科学分支中,温度和能量波动起着至关重要的作用,必须考虑热力学不确定性关系。量子热力学最重要的应用之一是量子计算机。假设在不久的将来,状态结构将创建使用量子计算获得的特定量子加密货币。量子加密货币表现出两个主要特征:最大的可靠性(针对黑客威胁的量子保护)和状态控制的可能性(目前,只有大型科学国家中心拥有量子计算机)。本文综述了旨在从理论上证明热力学不确定关系的有效性的研究。这个关系把系统的温度波动和能量波动联系起来。还考虑了其他类似的关系,包括压力和体积、熵和温度等波动之间的关系。本文的主要目的是验证连接温度和能量波动的不确定关系的热力学模拟。实验数据是在对半导体器件——晶体管的输运性质进行研究的基础上得到的。在实验中,研究了放置在单个硅晶体上的一对半导体晶体管的输运特性。在该系统中,一个晶体管用于确定温度波动,另一个晶体管用于估计能量波动。阐明了热力学不确定度关系在现代热力学中的关键作用。实验研究证实了热力学不确定度关系的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
THERMODYNAMIC UNCERTAINTY RELATION AS A FUNDAMENTAL ASPECT OF QUANTUM THERMODYNAMICS
The paper addresses physics of thermodynamic fluctuations in temperature and energy. These fluctuations are interrelated and, hence, can affect various micro- and macro systems. It is shown that the thermodynamic uncertainty relation must be taken into account in the physics of superconductivity, in quantum computations and other branches of science, where temperature and energy fluctuations play a critical role. One of the most important applications of quantum thermodynamics is quantum computers. It is assumed that in the near future the state structures will create a specific quantum cryptocurrency obtained using quantum computing. The quantum cryptocurrency exhibits two main features: the maximum reliability (quantum protection against hacking threats) and the possibility of state control (at the moment, only large scientific state centers have quantum computers). The paper reviews the studies aimed to theoretically prove the validity of the thermodynamic uncertainty relation. This relation connects fluctuations in temperature and energy of a system. Other similar relations are considered, including the relationship between fluctuations in pressure and volume, in entropy and temperature, and others. The main purpose of the paper is to validate the thermodynamic analogue of the uncertainty relation that interconnects temperature and energy fluctuations. Experimental data was obtained on the basis of the study of the transport properties of semiconductor devices – transistors. In the experiment, the transport properties of a pair of semiconductor transistors placed on a single silicon crystal were studied. In this system, one transistor was used to determine temperature fluctuations, and the other one was employed to estimate energy fluctuations. The key role of the thermodynamic uncertainty relation in modern thermodynamics has been clarified. The performed experimental studies confirm the validity of the thermodynamic uncertainty relation.
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