Kutvonen Aki, Koski Jonne, Ala-Nissila Tapio
COMP Center of Excellence, Department of Applied Physics, Aalto University School of Science, P.O. Box 11000, FI-00076 Aalto, Espoo, Finland.
Low Temperature Laboratory, Department of Applied Physics, Aalto University School of Science, P.O. Box 13500, FI-00076 Aalto, Espoo, Finland.
Sci Rep. 2016 Feb 18;6:21126. doi: 10.1038/srep21126.
In his famous letter in 1870, Maxwell describes how Joule's law can be violated "only by the intelligent action of a mere guiding agent", later coined as Maxwell's demon by Lord Kelvin. In this letter we study thermodynamics of information using an experimentally feasible Maxwell's demon setup based a single electron transistor capacitively coupled to a single electron box, where both the system and the Demon can be clearly identified. Such an engineered on-chip Demon measures and performes feedback on the system, which can be observed as cooling whose efficiency can be adjusted. We present a detailed analysis of the system and the Demon, including the second law of thermodynamics for bare and coarse grained entropy production and the flow of information as well as efficiency of information production and utilization. Our results demonstrate how information thermodynamics can be used to improve functionality of modern nanoscale devices.
在1870年那封著名的信中,麦克斯韦描述了焦耳定律如何“仅通过一个单纯的引导主体的智能作用”就可能被违反,后来开尔文勋爵将其称为麦克斯韦妖。在这封信中,我们使用一种基于与单电子盒电容耦合的单电子晶体管的实验可行的麦克斯韦妖装置来研究信息热力学,在该装置中系统和妖都能被清晰识别。这样一个设计的片上妖对系统进行测量并执行反馈,这可以被观察为冷却,其效率可以被调节。我们对系统和妖进行了详细分析,包括裸熵和粗粒化熵产生的热力学第二定律、信息流以及信息产生和利用的效率。我们的结果展示了信息热力学如何可用于改善现代纳米级器件的功能。