Diagnosing weakly first-order phase transitions by coupling to order parameters

The hunt for exotic quantum phase transitions described by emergent fractionalized degrees of freedom coupled to gauge fields requires a precise determination of the fixed point structure from the field theoretical side, and an extreme sensitivity to weak first-order transitions from the numerical s...

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Main Author: Jonathan D'Emidio, Alexander A. Eberharter, Andreas M. Läuchli
Format: Article
Language:English
Published: SciPost 2023-08-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.15.2.061
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author Jonathan D'Emidio, Alexander A. Eberharter, Andreas M. Läuchli
author_facet Jonathan D'Emidio, Alexander A. Eberharter, Andreas M. Läuchli
author_sort Jonathan D'Emidio, Alexander A. Eberharter, Andreas M. Läuchli
collection DOAJ
description The hunt for exotic quantum phase transitions described by emergent fractionalized degrees of freedom coupled to gauge fields requires a precise determination of the fixed point structure from the field theoretical side, and an extreme sensitivity to weak first-order transitions from the numerical side. Addressing the latter, we revive the classic definition of the order parameter in the limit of a vanishing external field at the transition. We demonstrate that this widely understood, yet so far unused approach provides a diagnostic test for first-order versus continuous behavior that is distinctly more sensitive than current methods. We first apply it to the family of $Q$-state Potts models, where the nature of the transition is continuous for $Q\leq4$ and turns (weakly) first order for $Q>4$, using an infinite system matrix product state implementation. We then employ this new approach to address the unsettled question of deconfined quantum criticality in the $S=1/2$ Néel to valence bond solid transition in two dimensions, focusing on the square lattice $J$-$Q$ model. Our quantum Monte Carlo simulations reveal that both order parameters remain finite at the transition, directly confirming a first-order scenario with wide reaching implications in condensed matter and quantum field theory.
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spelling doaj.art-a1a8f57b29be429f9b73a0408319556c2023-08-14T08:57:38ZengSciPostSciPost Physics2542-46532023-08-0115206110.21468/SciPostPhys.15.2.061Diagnosing weakly first-order phase transitions by coupling to order parametersJonathan D'Emidio, Alexander A. Eberharter, Andreas M. LäuchliThe hunt for exotic quantum phase transitions described by emergent fractionalized degrees of freedom coupled to gauge fields requires a precise determination of the fixed point structure from the field theoretical side, and an extreme sensitivity to weak first-order transitions from the numerical side. Addressing the latter, we revive the classic definition of the order parameter in the limit of a vanishing external field at the transition. We demonstrate that this widely understood, yet so far unused approach provides a diagnostic test for first-order versus continuous behavior that is distinctly more sensitive than current methods. We first apply it to the family of $Q$-state Potts models, where the nature of the transition is continuous for $Q\leq4$ and turns (weakly) first order for $Q>4$, using an infinite system matrix product state implementation. We then employ this new approach to address the unsettled question of deconfined quantum criticality in the $S=1/2$ Néel to valence bond solid transition in two dimensions, focusing on the square lattice $J$-$Q$ model. Our quantum Monte Carlo simulations reveal that both order parameters remain finite at the transition, directly confirming a first-order scenario with wide reaching implications in condensed matter and quantum field theory.https://scipost.org/SciPostPhys.15.2.061
spellingShingle Jonathan D'Emidio, Alexander A. Eberharter, Andreas M. Läuchli
Diagnosing weakly first-order phase transitions by coupling to order parameters
SciPost Physics
title Diagnosing weakly first-order phase transitions by coupling to order parameters
title_full Diagnosing weakly first-order phase transitions by coupling to order parameters
title_fullStr Diagnosing weakly first-order phase transitions by coupling to order parameters
title_full_unstemmed Diagnosing weakly first-order phase transitions by coupling to order parameters
title_short Diagnosing weakly first-order phase transitions by coupling to order parameters
title_sort diagnosing weakly first order phase transitions by coupling to order parameters
url https://scipost.org/SciPostPhys.15.2.061
work_keys_str_mv AT jonathandemidioalexanderaeberharterandreasmlauchli diagnosingweaklyfirstorderphasetransitionsbycouplingtoorderparameters