Thermodynamics of a Single Mesoscopic Phononic Mode
Ilya Golokolenov, Arpit Ranadive, Luca Planat, Martina Esposito,, Nicolas Roch, Xin Zhou, Andrew Fefferman, Eddy Collin

TL;DR
This paper reports on real-time measurements of thermal fluctuations in a single mesoscopic mechanical mode, confirming classical thermodynamic behavior and paving the way for quantum thermodynamics studies.
Contribution
It introduces a microwave opto-mechanical setup capable of resolving energy fluctuations of a single mechanical mode at cryogenic temperatures, demonstrating classical thermodynamic properties at the mesoscopic scale.
Findings
Energy fluctuations follow Boltzmann distribution.
Variance of fluctuations matches $(k_B T)^2$ without free parameters.
Detection resolution approaches the quantum limit with future improvements.
Abstract
In recent decades, the laws of thermodynamics have been pushed down to smaller and smaller scales, within the field of stochastic thermodynamics and state-of-art experiments performed on mesoscopic systems. These measurements concern electrons, photons, and mesoscopic mechanical objects. Here we report on the measurements of thermal fluctuations of a single mechanical mode in-equilibrium with a heat reservoir. The device under study is a nanomechanical beam with a first flexure resonating at 3.8MHz, cooled down to temperatures in the range from 100mK to 400mK. The technique is constructed around a microwave opto-mechanical setup using a cryogenic High Electron Mobility Transistor, and is based on two parametric amplifications implemented in series: an in-built opto-mechanical 'blue-detuned' pumping plus a Traveling Wave Parametric Amplifier stage. We demonstrate our ability to resolve…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Mechanical and Optical Resonators · Quantum, superfluid, helium dynamics
