» Articles » PMID: 23002817

Quantum Bath Refrigeration Towards Absolute Zero: Challenging the Unattainability Principle

Overview
Journal Phys Rev Lett
Specialty Biophysics
Date 2012 Sep 26
PMID 23002817
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

A minimal model of a quantum refrigerator, i.e., a periodically phase-flipped two-level system permanently coupled to a finite-capacity bath (cold bath) and an infinite heat dump (hot bath), is introduced and used to investigate the cooling of the cold bath towards absolute zero (T=0). Remarkably, the temperature scaling of the cold-bath cooling rate reveals that it does not vanish as T→0 for certain realistic quantized baths, e.g., phonons in strongly disordered media (fractons) or quantized spin waves in ferromagnets (magnons). This result challenges Nernst's third-law formulation known as the unattainability principle.

Citing Articles

Nonlinear coherent heat machines.

Opatrny T, Brauer S, Kofman A, Misra A, Meher N, Firstenberg O Sci Adv. 2023; 9(1):eadf1070.

PMID: 36608121 PMC: 9821940. DOI: 10.1126/sciadv.adf1070.


Quantum Heat Engines with Complex Working Media, Complete Otto Cycles and Heuristics.

Johal R, Mehta V Entropy (Basel). 2021; 23(9).

PMID: 34573774 PMC: 8468726. DOI: 10.3390/e23091149.


Bound on Efficiency of Heat Engine from Uncertainty Relation Viewpoint.

Chattopadhyay P, Mitra A, Paul G, Zarikas V Entropy (Basel). 2021; 23(4).

PMID: 33918678 PMC: 8068911. DOI: 10.3390/e23040439.


Catalysis of heat-to-work conversion in quantum machines.

Ghosh A, Latune C, Davidovich L, Kurizki G Proc Natl Acad Sci U S A. 2017; 114(46):12156-12161.

PMID: 29087326 PMC: 5699064. DOI: 10.1073/pnas.1711381114.


A general derivation and quantification of the third law of thermodynamics.

Masanes L, Oppenheim J Nat Commun. 2017; 8:14538.

PMID: 28290452 PMC: 5355879. DOI: 10.1038/ncomms14538.