Strong Mpemba Effect Through a Reentrant Phase Transition

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Blom, Kristian, Benyamin, Doron, Thiele, Uwe, Raz, Oren, Godec, Aljaz
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913077791817728
author Blom, Kristian
Benyamin, Doron
Thiele, Uwe
Raz, Oren
Godec, Aljaz
author_facet Blom, Kristian
Benyamin, Doron
Thiele, Uwe
Raz, Oren
Godec, Aljaz
contents We investigate temperature quenches across the reentrant phase transition of the antiferromagnetic Ising model in a magnetic field and show that the strong direct and inverse Mpemba effects arise when quenches terminate in the paramagnetic phase. These anomalous relaxation phenomena originate from the selective excitation of the slowest relaxation mode, which in the paramagnetic phase is purely staggered. Consequently, quenches starting from the paramagnetic phase have zero overlap with the slow mode and exhibit a strong (inverse) Mpemba effect. Quenches from the antiferromagnetic phase excite the staggered mode and display a slow-relaxation tail. By varying the lattice coordination number we show that the strong Mpemba effect disappears in the absence of reentrance. Our results provide the first demonstration of the strong (inverse) Mpemba effect in the antiferromagnetic Ising model based on the pair-approximation, and establish a link between anomalous relaxation and the equilibrium phase behavior.
format Preprint
id arxiv_https___arxiv_org_abs_2604_28117
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Strong Mpemba Effect Through a Reentrant Phase Transition
Blom, Kristian
Benyamin, Doron
Thiele, Uwe
Raz, Oren
Godec, Aljaz
Statistical Mechanics
We investigate temperature quenches across the reentrant phase transition of the antiferromagnetic Ising model in a magnetic field and show that the strong direct and inverse Mpemba effects arise when quenches terminate in the paramagnetic phase. These anomalous relaxation phenomena originate from the selective excitation of the slowest relaxation mode, which in the paramagnetic phase is purely staggered. Consequently, quenches starting from the paramagnetic phase have zero overlap with the slow mode and exhibit a strong (inverse) Mpemba effect. Quenches from the antiferromagnetic phase excite the staggered mode and display a slow-relaxation tail. By varying the lattice coordination number we show that the strong Mpemba effect disappears in the absence of reentrance. Our results provide the first demonstration of the strong (inverse) Mpemba effect in the antiferromagnetic Ising model based on the pair-approximation, and establish a link between anomalous relaxation and the equilibrium phase behavior.
title Strong Mpemba Effect Through a Reentrant Phase Transition
topic Statistical Mechanics
url https://arxiv.org/abs/2604.28117