Stabilization of Néel order in frustrated magnets with increasing magnetic field

For low-dimensional frustrated quantum magnets, the dependence of the staggered moment ms on a magnetic field is nonmonotonic: For small and intermediate fields, quantum fluctuations are gradually suppressed, leading to an increase of ms (H). For large applied magnetic fields however, the classically ex...

Full description

Bibliographic Details
Main Authors: Thalmeier Peter, Siahatgar Mohammad, Schmidt Burkhard
Format: Article
Language:English
Published: EDP Sciences 2013-01-01
Series:EPJ Web of Conferences
Online Access:http://dx.doi.org/10.1051/epjconf/20134004001
id doaj-eb506a11f6f84e1eb9cd0bd6adf297d4
record_format Article
spelling doaj-eb506a11f6f84e1eb9cd0bd6adf297d42021-08-02T11:24:48ZengEDP SciencesEPJ Web of Conferences2100-014X2013-01-01400400110.1051/epjconf/20134004001Stabilization of Néel order in frustrated magnets with increasing magnetic fieldThalmeier PeterSiahatgar MohammadSchmidt BurkhardFor low-dimensional frustrated quantum magnets, the dependence of the staggered moment ms on a magnetic field is nonmonotonic: For small and intermediate fields, quantum fluctuations are gradually suppressed, leading to an increase of ms (H). For large applied magnetic fields however, the classically expected monotonous decrease is recovered. For the same reasons, the Néel ordering temperature TN of such compounds first increases and then exhibits a reentrant behavior as a function of the field strength. The quantitative analysis of this behavior is an excellent tool to determine the frustration parameter of a given compound. We have derived a general linear spin-wave (LSW) theory in the presence of a magnetic field. Based on our LSW theory, including a small interlayer coupling, we use a self-consistent approach determining TN by the condition of a vanishing total moment. We apply our findings to the recently measured field dependence of the magnetic ordering temperature TN of Cu(pz)2 (ClO4)2 in the framework of the S = 1/2 two-dimensional J1-J2 Heisenberg model. The observed increase with increasing field strength can be understood naturally using an intermediate frustration ratio J2/J1 ≈ 0.2, which is in accordance with the field dependence of the staggered moment.http://dx.doi.org/10.1051/epjconf/20134004001
collection DOAJ
language English
format Article
sources DOAJ
author Thalmeier Peter
Siahatgar Mohammad
Schmidt Burkhard
spellingShingle Thalmeier Peter
Siahatgar Mohammad
Schmidt Burkhard
Stabilization of Néel order in frustrated magnets with increasing magnetic field
EPJ Web of Conferences
author_facet Thalmeier Peter
Siahatgar Mohammad
Schmidt Burkhard
author_sort Thalmeier Peter
title Stabilization of Néel order in frustrated magnets with increasing magnetic field
title_short Stabilization of Néel order in frustrated magnets with increasing magnetic field
title_full Stabilization of Néel order in frustrated magnets with increasing magnetic field
title_fullStr Stabilization of Néel order in frustrated magnets with increasing magnetic field
title_full_unstemmed Stabilization of Néel order in frustrated magnets with increasing magnetic field
title_sort stabilization of néel order in frustrated magnets with increasing magnetic field
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2013-01-01
description For low-dimensional frustrated quantum magnets, the dependence of the staggered moment ms on a magnetic field is nonmonotonic: For small and intermediate fields, quantum fluctuations are gradually suppressed, leading to an increase of ms (H). For large applied magnetic fields however, the classically expected monotonous decrease is recovered. For the same reasons, the Néel ordering temperature TN of such compounds first increases and then exhibits a reentrant behavior as a function of the field strength. The quantitative analysis of this behavior is an excellent tool to determine the frustration parameter of a given compound. We have derived a general linear spin-wave (LSW) theory in the presence of a magnetic field. Based on our LSW theory, including a small interlayer coupling, we use a self-consistent approach determining TN by the condition of a vanishing total moment. We apply our findings to the recently measured field dependence of the magnetic ordering temperature TN of Cu(pz)2 (ClO4)2 in the framework of the S = 1/2 two-dimensional J1-J2 Heisenberg model. The observed increase with increasing field strength can be understood naturally using an intermediate frustration ratio J2/J1 ≈ 0.2, which is in accordance with the field dependence of the staggered moment.
url http://dx.doi.org/10.1051/epjconf/20134004001
work_keys_str_mv AT thalmeierpeter stabilizationofneelorderinfrustratedmagnetswithincreasingmagneticfield
AT siahatgarmohammad stabilizationofneelorderinfrustratedmagnetswithincreasingmagneticfield
AT schmidtburkhard stabilizationofneelorderinfrustratedmagnetswithincreasingmagneticfield
_version_ 1721233278974820352