Hysteresis-driven radiative Mpemba effect in phase-change nanostructures

The Mpemba effect states that initially hotter systems cool faster than colder ones. While known in convective, conductive, and quantum systems, its radiative analog is unexplored. Here, this anomaly is realized via phase-change hysteresis of a VO 2 nanoparticle near a SiC substrate. After analytically deriving an onset condition, the phase space is mapped. Crucially, latent heat acts as a thermal buffer enabling both ordinary and inverse effects. Near-field coupling governs the relaxation time and enables a passive effect where memory is stored externally via substrate reflection.

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Publication Details

Journal
Physical review. B./Physical review. B
Published
2026-10-06
DOI
https://doi.org/10.1103/hnjl-fwl7
Primary Topic
Thermal Radiation and Cooling Technologies
Type
article
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article

Hysteresis-driven radiative Mpemba effect in phase-change nanostructures

Florian Herz
Physical review. B./Physical review. B
Thermal Radiation and Cooling Technologies
article

Hysteresis-driven radiative Mpemba effect in phase-change nanostructures

Florian Herz
article en

Abstract

The Mpemba effect states that initially hotter systems cool faster than colder ones. While known in convective, conductive, and quantum systems, its radiative analog is unexplored. Here, this anomaly is realized via phase-change hysteresis of a VO 2 nanoparticle near a SiC substrate. After analytically deriving an onset condition, the phase space is mapped. Crucially, latent heat acts as a thermal buffer enabling both ordinary and inverse effects. Near-field coupling governs the relaxation time and enables a passive effect where memory is stored externally via substrate reflection.

Physical review. B./Physical review. BVol. 114(23)
Carl von Ossietzky Universität Oldenburg (DE)
Openalex Percentile: Top 59%
Thermal Radiation and Cooling Technologies
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