Abstract
Abstract
Heat transfer in supercritical fluids is commonly interpreted as single-phase convection, where heat fluxes vary monotonically with wall superheat. In this work, a counterintuitive phenomenon, i.e., the heat fluxes increase with decreasing wall temperatures, usually termed “boiling curve reversion” in subcritical conditions, is observed on a heated wire in a supercritical fluid. Our measurements reveal that the inversion is governed by the periodic formation, lateral chain-like diffusion, and collapse of vapor-like column clusters near the heated wall. These structures separate vapor-like (VL) and liquid-like (LL) pathways and drive ordered sweeping of low-temperature, high-density fluid toward the heated surface, thereby enhancing transient heat transfer. To quantify this process, an ordered cooling intensity S is defined from the total VL–LL interfacial area and is found to correlate negatively with wall temperature. A chain-diffusion model further indicates that zero-surface-tension interfacial instability underlies the evolution of the column clusters and the resulting heat-transfer enhancement. The above results support the conclusion that self-organized interfacial ordering underlies heat-transfer-curve inversion in supercritical fluids. Our findings offer clear evidence for the two-phase nature of supercritical fluids in terms of heat transfer, providing a new framework for understanding the negative “boiling curve” in fluids with vanishing surface tension.
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@article{Wu2026Interfacial,
title = {Interfacial ordering reverses the boiling curve in supercritical fluids},
author = {Guohan Wu and Xiongjiang Yu and Jinliang Xu and Bo Zhang},
journal = {Applied Physics Letters},
year = {2026},
doi = {10.1063/5.0340076},
url = {https://doi.org/10.1063/5.0340076}
}
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