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Autores principales: Gopal, Ashwin, Esposito, Massimiliano, Freitas, Nahuel
Formato: Preprint
Publicado: 2023
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Acceso en línea:https://arxiv.org/abs/2308.10074
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author Gopal, Ashwin
Esposito, Massimiliano
Freitas, Nahuel
author_facet Gopal, Ashwin
Esposito, Massimiliano
Freitas, Nahuel
contents Clocks are inherently out-of-equilibrium because, due to friction, they constantly consume free energy to keep track of time. The Thermodynamic Uncertainty Relation (TUR) quantifies the trade-off between the precision of any time-antisymmetric observable and entropy production. In the context of clocks, the TUR implies that a minimum entropy production is needed in order to achieve a certain level of precision in timekeeping. But the TUR has only been proven for overdamped systems. Recently, a toy model of a classical underdamped pendulum clock was proposed that violated this relation (Phys. Rev. Lett. 128, 130606), thus demonstrating that the TUR does not hold for underdamped dynamics. We propose an electronic implementation of such a clock, using a resistor-inductor-capacitor (RLC) circuit and a biased CMOS inverter (NOT gate), which can work at different scales. We find that in the nanoscopic single-electron regime of the circuit, we essentially recover the toy model violating the TUR bound. However, in different macroscopic regimes of the circuit, we show that the TUR bound is restored and analyze the thermodynamic efficiency of timekeeping.
format Preprint
id arxiv_https___arxiv_org_abs_2308_10074
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Thermodynamic cost of precise timekeeping in an electronic underdamped clock
Gopal, Ashwin
Esposito, Massimiliano
Freitas, Nahuel
Statistical Mechanics
Clocks are inherently out-of-equilibrium because, due to friction, they constantly consume free energy to keep track of time. The Thermodynamic Uncertainty Relation (TUR) quantifies the trade-off between the precision of any time-antisymmetric observable and entropy production. In the context of clocks, the TUR implies that a minimum entropy production is needed in order to achieve a certain level of precision in timekeeping. But the TUR has only been proven for overdamped systems. Recently, a toy model of a classical underdamped pendulum clock was proposed that violated this relation (Phys. Rev. Lett. 128, 130606), thus demonstrating that the TUR does not hold for underdamped dynamics. We propose an electronic implementation of such a clock, using a resistor-inductor-capacitor (RLC) circuit and a biased CMOS inverter (NOT gate), which can work at different scales. We find that in the nanoscopic single-electron regime of the circuit, we essentially recover the toy model violating the TUR bound. However, in different macroscopic regimes of the circuit, we show that the TUR bound is restored and analyze the thermodynamic efficiency of timekeeping.
title Thermodynamic cost of precise timekeeping in an electronic underdamped clock
topic Statistical Mechanics
url https://arxiv.org/abs/2308.10074