Stokes-Type Entropic Force Driving Nanoscale Phonon-Mediated Superlubricity in 2D Materials

This Communication addresses a superlubric state in graphene-type layers in nanoscale conditions. We focus on the superlubric state based on the twofold generation and propagation of (thermal) phonons. In the first instance, phonon propagation has a local mode in the graphene-type lattice, whereas in the second instance, it can spread globally. In the former, we see that the kinematic harmonic-mean-type speed condition underlies the mechanism of phonon propagation. In the latter, an arithmetic-mean fingerprint, pointing to a constant acceleration case, can be applied. We disclose a linear phonon-propagation mechanism with an entropic force behind it. Under a passage between classical and quantum domains, this entropic force is equivalent to a Stokes-type force (linear in the sliding speed) with a resultant involvement of a quantum fluctuation–dissipation relation, including a “double quantum” of thermal energy and the apparent (quantum viz. nanoscale) viscosity. The corresponding entropy-production conditions are derived and critically discussed within this framework, establishing a direct thermodynamic link between microscopic (physical) information-processing events and mesoscopic phonon transport. The resulting unified classical–quantum description of entropy-driven phonon-mediated superlubricity constitutes the principal novelty of the present work and may be relevant for future developments in nanotechnology and advanced materials engineering.

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Journal
Entropy
Published
2026-09-24
DOI
https://doi.org/10.3390/e28101051
Primary Topic
Thermal properties of materials
Type
article
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Stokes-Type Entropic Force Driving Nanoscale Phonon-Mediated Superlubricity in 2D Materials

Adam Maria Gadomski, Natalia Kruszewska, J. M. Rubı́, Karol Karpiński
Entropy
Thermal properties of materials
article

Stokes-Type Entropic Force Driving Nanoscale Phonon-Mediated Superlubricity in 2D Materials

Adam Maria Gadomski, Natalia Kruszewska, J. M. Rubı́, Karol Karpiński
article en

Abstract

This Communication addresses a superlubric state in graphene-type layers in nanoscale conditions. We focus on the superlubric state based on the twofold generation and propagation of (thermal) phonons. In the first instance, phonon propagation has a local mode in the graphene-type lattice, whereas in the second instance, it can spread globally. In the former, we see that the kinematic harmonic-mean-type speed condition underlies the mechanism of phonon propagation. In the latter, an arithmetic-mean fingerprint, pointing to a constant acceleration case, can be applied. We disclose a linear phonon-propagation mechanism with an entropic force behind it. Under a passage between classical and quantum domains, this entropic force is equivalent to a Stokes-type force (linear in the sliding speed) with a resultant involvement of a quantum fluctuation–dissipation relation, including a “double quantum” of thermal energy and the apparent (quantum viz. nanoscale) viscosity. The corresponding entropy-production conditions are derived and critically discussed within this framework, establishing a direct thermodynamic link between microscopic (physical) information-processing events and mesoscopic phonon transport. The resulting unified classical–quantum description of entropy-driven phonon-mediated superlubricity constitutes the principal novelty of the present work and may be relevant for future developments in nanotechnology and advanced materials engineering.

EntropyVol. 28(10)
Bydgoszcz University of Science and Technology (PL), AGH University of Krakow (PL), Universitat de Barcelona (ES)
Industry, innovation and infrastructure
Openalex Percentile: Top 26%
Thermal properties of materials
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Stokes-Type Entropic Force Driving Nanoscale Phonon-Mediated Superlubricity in 2D Materials — Adam Maria Gadomski, Natalia Kruszewska, et al. · Entropy (2026) | TGRS Research Map | TGRS