| Literature DB >> 29347639 |
Aykut Argun1, Jalpa Soni1, Lennart Dabelow2, Stefano Bo3, Giuseppe Pesce4, Ralf Eichhorn3, Giovanni Volpe1.
Abstract
Microscopic heat engines are microscale systems that convert energy flows between heat reservoirs into work or systematic motion. We have experimentally realized a minimal microscopic heat engine. It consists of a colloidal Brownian particle optically trapped in an elliptical potential well and simultaneously coupled to two heat baths at different temperatures acting along perpendicular directions. For a generic arrangement of the principal directions of the baths and the potential, the symmetry of the system is broken, such that the heat flow drives a systematic gyrating motion of the particle around the potential minimum. Using the experimentally measured trajectories, we quantify the gyrating motion of the particle, the resulting torque that it exerts on the potential, and the associated heat flow between the heat baths. We find excellent agreement between the experimental results and the theoretical predictions.Year: 2017 PMID: 29347639 DOI: 10.1103/PhysRevE.96.052106
Source DB: PubMed Journal: Phys Rev E ISSN: 2470-0045 Impact factor: 2.529