Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet

We study the spin-excitation spectrum (dynamic structure factor) of the spin-1/2 square-lattice Heisenberg antiferromagnet and an extended model (the J-Q model) including four-spin interactions Q in addition to the Heisenberg exchange J. Using an improved method for stochastic analytic continuation...

Full description

Bibliographic Details
Main Authors: Hui Shao, Yan Qi Qin, Sylvain Capponi, Stefano Chesi, Zi Yang Meng, Anders W. Sandvik
Format: Article
Language:English
Published: American Physical Society 2017-12-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.7.041072
_version_ 1818893386490314752
author Hui Shao
Yan Qi Qin
Sylvain Capponi
Stefano Chesi
Zi Yang Meng
Anders W. Sandvik
author_facet Hui Shao
Yan Qi Qin
Sylvain Capponi
Stefano Chesi
Zi Yang Meng
Anders W. Sandvik
author_sort Hui Shao
collection DOAJ
description We study the spin-excitation spectrum (dynamic structure factor) of the spin-1/2 square-lattice Heisenberg antiferromagnet and an extended model (the J-Q model) including four-spin interactions Q in addition to the Heisenberg exchange J. Using an improved method for stochastic analytic continuation of imaginary-time correlation functions computed with quantum Monte Carlo simulations, we can treat the sharp (δ-function) contribution to the structure factor expected from spin-wave (magnon) excitations, in addition to resolving a continuum above the magnon energy. Spectra for the Heisenberg model are in excellent agreement with recent neutron-scattering experiments on Cu(DCOO)_{2}·4D_{2}O, where a broad spectral-weight continuum at wave vector q=(π,0) was interpreted as deconfined spinons, i.e., fractional excitations carrying half of the spin of a magnon. Our results at (π,0) show a similar reduction of the magnon weight and a large continuum, while the continuum is much smaller at q=(π/2,π/2) (as also seen experimentally). We further investigate the reasons for the small magnon weight at (π,0) and the nature of the corresponding excitation by studying the evolution of the spectral functions in the J-Q model. Upon turning on the Q interaction, we observe a rapid reduction of the magnon weight to zero, well before the system undergoes a deconfined quantum phase transition into a nonmagnetic spontaneously dimerized state. Based on these results, we reinterpret the picture of deconfined spinons at (π,0) in the experiments as nearly deconfined spinons—a precursor to deconfined quantum criticality. To further elucidate the picture of a fragile (π,0)-magnon pole in the Heisenberg model and its depletion in the J-Q model, we introduce an effective model of the excitations in which a magnon can split into two spinons that do not separate but fluctuate in and out of the magnon space (in analogy to the resonance between a photon and a particle-hole pair in the exciton-polariton problem). The model can reproduce the reduction of magnon weight and lowered excitation energy at (π,0) in the Heisenberg model, as well as the energy maximum and smaller continuum at (π/2,π/2). It can also account for the rapid loss of the (π,0) magnon with increasing Q and the remarkable persistence of a large magnon pole at q=(π/2,π/2) even at the deconfined critical point. The fragility of the magnons close to (π,0) in the Heisenberg model suggests that various interactions that likely are important in many materials—e.g., longer-range pair exchange, ring exchange, and spin-phonon interactions—may also destroy these magnons and lead to even stronger spinon signatures than in Cu(DCOO)_{2}·4D_{2}O.
first_indexed 2024-12-19T18:11:46Z
format Article
id doaj.art-8100b95ccd7c4ba383344cf1afe8dab8
institution Directory Open Access Journal
issn 2160-3308
language English
last_indexed 2024-12-19T18:11:46Z
publishDate 2017-12-01
publisher American Physical Society
record_format Article
series Physical Review X
spelling doaj.art-8100b95ccd7c4ba383344cf1afe8dab82022-12-21T20:11:18ZengAmerican Physical SocietyPhysical Review X2160-33082017-12-017404107210.1103/PhysRevX.7.041072Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg AntiferromagnetHui ShaoYan Qi QinSylvain CapponiStefano ChesiZi Yang MengAnders W. SandvikWe study the spin-excitation spectrum (dynamic structure factor) of the spin-1/2 square-lattice Heisenberg antiferromagnet and an extended model (the J-Q model) including four-spin interactions Q in addition to the Heisenberg exchange J. Using an improved method for stochastic analytic continuation of imaginary-time correlation functions computed with quantum Monte Carlo simulations, we can treat the sharp (δ-function) contribution to the structure factor expected from spin-wave (magnon) excitations, in addition to resolving a continuum above the magnon energy. Spectra for the Heisenberg model are in excellent agreement with recent neutron-scattering experiments on Cu(DCOO)_{2}·4D_{2}O, where a broad spectral-weight continuum at wave vector q=(π,0) was interpreted as deconfined spinons, i.e., fractional excitations carrying half of the spin of a magnon. Our results at (π,0) show a similar reduction of the magnon weight and a large continuum, while the continuum is much smaller at q=(π/2,π/2) (as also seen experimentally). We further investigate the reasons for the small magnon weight at (π,0) and the nature of the corresponding excitation by studying the evolution of the spectral functions in the J-Q model. Upon turning on the Q interaction, we observe a rapid reduction of the magnon weight to zero, well before the system undergoes a deconfined quantum phase transition into a nonmagnetic spontaneously dimerized state. Based on these results, we reinterpret the picture of deconfined spinons at (π,0) in the experiments as nearly deconfined spinons—a precursor to deconfined quantum criticality. To further elucidate the picture of a fragile (π,0)-magnon pole in the Heisenberg model and its depletion in the J-Q model, we introduce an effective model of the excitations in which a magnon can split into two spinons that do not separate but fluctuate in and out of the magnon space (in analogy to the resonance between a photon and a particle-hole pair in the exciton-polariton problem). The model can reproduce the reduction of magnon weight and lowered excitation energy at (π,0) in the Heisenberg model, as well as the energy maximum and smaller continuum at (π/2,π/2). It can also account for the rapid loss of the (π,0) magnon with increasing Q and the remarkable persistence of a large magnon pole at q=(π/2,π/2) even at the deconfined critical point. The fragility of the magnons close to (π,0) in the Heisenberg model suggests that various interactions that likely are important in many materials—e.g., longer-range pair exchange, ring exchange, and spin-phonon interactions—may also destroy these magnons and lead to even stronger spinon signatures than in Cu(DCOO)_{2}·4D_{2}O.http://doi.org/10.1103/PhysRevX.7.041072
spellingShingle Hui Shao
Yan Qi Qin
Sylvain Capponi
Stefano Chesi
Zi Yang Meng
Anders W. Sandvik
Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
Physical Review X
title Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
title_full Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
title_fullStr Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
title_full_unstemmed Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
title_short Nearly Deconfined Spinon Excitations in the Square-Lattice Spin-1/2 Heisenberg Antiferromagnet
title_sort nearly deconfined spinon excitations in the square lattice spin 1 2 heisenberg antiferromagnet
url http://doi.org/10.1103/PhysRevX.7.041072
work_keys_str_mv AT huishao nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet
AT yanqiqin nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet
AT sylvaincapponi nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet
AT stefanochesi nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet
AT ziyangmeng nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet
AT anderswsandvik nearlydeconfinedspinonexcitationsinthesquarelatticespin12heisenbergantiferromagnet