logo
ResearchBunny Logo
Heating and cooling are fundamentally asymmetric and evolve along distinct pathways

Physics

Heating and cooling are fundamentally asymmetric and evolve along distinct pathways

M. Ibáñez, C. Dieball, et al.

This groundbreaking research by M. Ibáñez, C. Dieball, A. Lasanta, A. Godec, and R. A. Rica reveals that microscale systems exhibit a fascinating asymmetry in thermal relaxation, heating up faster than they cool down. Utilizing an optically trapped colloidal particle, the team introduces a new theoretical framework called thermal kinematics, redefining our understanding of energy conversion and thermal management in microscopic devices.

00:00
00:00
~3 min • Beginner • English
Abstract
According to conventional wisdom, a system placed in an environment with a different temperature tends to relax to the temperature of the latter, mediated by the flows of heat or matter that are set solely by the temperature difference. It is becoming clear, however, that thermal relaxation is much more intricate when temperature changes push the system far from thermodynamic equilibrium. Here, by using an optically trapped colloidal particle, we show that microscale systems under such conditions heat up faster than they cool down. We find that between any pair of temperatures, heating is not only faster than cooling but the respective processes, in fact, evolve along fundamentally distinct pathways, which we explain with a new theoretical framework that we call thermal kinematics. Our results change the view of thermalization at the microscale and will have a strong impact on energy-conversion applications and thermal management of microscopic devices, particularly in the operation of Brownian heat engines.
Publisher
Nature Physics
Published On
Jan 03, 2024
Authors
M. Ibáñez, C. Dieball, A. Lasanta, A. Godec, R. A. Rica
Tags
thermal relaxation
microscale systems
thermal kinematics
energy conversion
thermal management
colloidal particles
Listen, Learn & Level Up
Over 10,000 hours of research content in 25+ fields, available in 12+ languages.
No more digging through PDFs, just hit play and absorb the world's latest research in your language, on your time.
listen to research audio papers with researchbunny