Antiferromagnetic Magnons as Highly Squeezed Fock States underlying Quantum Correlations

dc.contributor.authorKamra, Akashdeep
dc.contributor.authorThingstad, Even
dc.contributor.authorRastelli, Gianluca
dc.contributor.authorDuine, Rembert A.
dc.contributor.authorBrataas, Arne
dc.contributor.authorBelzig, Wolfgang
dc.contributor.authorSudbø, Asle
dc.date.accessioned2019-04-10T09:06:51Z
dc.date.available2019-04-10T09:06:51Z
dc.date.issued2019-04-09T09:18:01Zeng
dc.description.abstractEmploying the concept of two-mode squeezed states from quantum optics, we demonstrate a revealing physical picture for the antiferromagnetic ground state and excitations. Superimposed on a N\'eel ordered configuration, a spin-flip restricted to one of the sublattices is called a sublattice-magnon. We show that an antiferromagnetic spin-up magnon is comprised by a quantum superposition of states with $n+1$ spin-up and $n$ spin-down sublattice-magnons, and is thus an enormous excitation despite its unit net spin. Consequently, its large sublattice-spin can amplify its coupling to other excitations. Employing von Neumann entropy as a measure, we show that the antiferromagnetic eigenmodes manifest a high degree of entanglement between the two sublattices, thereby establishing antiferromagnets as reservoirs for strong quantum correlations. Based on these novel insights, we outline strategies for exploiting the strong quantum character of antiferromagetic (squeezed-)magnons.eng
dc.description.versionpublishedeng
dc.identifier.arxiv1904.04553eng
dc.identifier.ppn1663056420
dc.identifier.urihttps://kops.uni-konstanz.de/handle/123456789/45612
dc.language.isoengeng
dc.rightsterms-of-use
dc.rights.urihttps://rightsstatements.org/page/InC/1.0/
dc.subject.ddc530eng
dc.titleAntiferromagnetic Magnons as Highly Squeezed Fock States underlying Quantum Correlationseng
dc.typeWORKINGPAPEReng
dspace.entity.typePublication
kops.description.openAccessopenaccessgreen
kops.flag.knbibliographytrue
kops.identifier.nbnurn:nbn:de:bsz:352-2-yeoku8f15ncn2
temp.submission.doi
temp.submission.source

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2019-11-06 07:22:18
Veröffentlichung in Physical Review B
1*
2019-04-10 09:06:51
* Ausgewählte Version