Virtual double-well potential for an underdamped oscillator created by a feedback loop
arXiv:2201.09870 · doi:10.1088/1742-5468/ac6d62
Abstract
Virtual potentials are a very elegant, precise and flexible tool to manipulate small systems and explore fundamental questions in stochastic thermodynamics. In particular double-well potentials have applications in information processing, such as the demonstration of Landauer's principle. Nevertheless, virtual double-well potentials had never been implemented in underdamped systems. In this article, we detail how to face the experimental challenge of creating a feedback loop for an underdamped system (exploring its potential energy landscape much faster than its over-damped counterpart), in order to build a tunable virtual double-well potential. To properly describe the system behavior in the feedback trap, we express the switching time in the double-well for all barrier heights, combining for the first time Kramer's description, valid at high barriers, with an adjusted model for lower ones. We show that a small hysteresis or delay of the feedback loop in the switches between the two wells results in a modified velocity distribution, interpreted as a cooling of the kinetic temperature of the system. We successfully address all issues to create experimentally a virtual potential that is statistically indistinguishable from a physical one, with a tunable barrier height and energy step between the two wells.
References in corpus (9)
- High-precision test of Landauer's principle in a feedback trap
- Finite-time Landauer principle
- Optimal protocols for minimal work processes in underdamped stochastic thermodynamics
- Entropy Production of Brownian Macromolecules with Inertia
- Stochastic thermodynamics of Langevin systems under time-delayed feedback control: I. Second-law-like inequalities
- Dynamics of information erasure and extension of Landauer's bound to fast processes
- Real-time calibration of a feedback trap
- Non-equilibrium steady state of a driven levitated particle with feedback cooling
- Thermal noise of microcantilevers in viscous fluids