Please use this identifier to cite or link to this item: https://doi.org/10.1038/s42005-019-0235-4
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dc.titleEmergence and full 3D-imaging of nodal boundary Seifert surfaces in 4D topological matter
dc.contributor.authorLi, Linhu
dc.contributor.authorLee, Ching Hua
dc.contributor.authorGong, Jiangbin
dc.date.accessioned2021-09-20T07:39:36Z
dc.date.available2021-09-20T07:39:36Z
dc.date.issued2019-10-29
dc.identifier.citationLi, Linhu, Lee, Ching Hua, Gong, Jiangbin (2019-10-29). Emergence and full 3D-imaging of nodal boundary Seifert surfaces in 4D topological matter. COMMUNICATIONS PHYSICS 2 (1). ScholarBank@NUS Repository. https://doi.org/10.1038/s42005-019-0235-4
dc.identifier.issn2399-3650,2399-3650
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/200722
dc.description.abstractThe topological classification of nodal links and knot has enamored physicists and mathematicians alike, both for its mathematical elegance and implications on optical and transport phenomena. Central to this pursuit is the Seifert surface bounding the link/knot, which has for long remained a mathematical abstraction. Here we propose an experimentally realistic setup where Seifert surfaces emerge as boundary states of 4D topological systems constructed by stacking 3D nodal line systems along a 4th quasimomentum. We provide an explicit realization with 4D circuit lattices, which are freed from symmetry constraints and are readily tunable due to the dimension and distance agnostic nature of circuit connections. Importantly, their Seifert surfaces can be imaged in 3D via their pronounced impedance peaks, and are directly related to knot invariants like the Alexander polynomial and knot Signature. This work thus unleashes the great potential of Seifert surfaces as sophisticated yet accessible tools in exotic bandstructure studies.
dc.language.isoen
dc.publisherNATURE PUBLISHING GROUP
dc.sourceElements
dc.subjectScience & Technology
dc.subjectPhysical Sciences
dc.subjectPhysics, Multidisciplinary
dc.subjectPhysics
dc.subjectEDGE STATES
dc.typeArticle
dc.date.updated2021-09-19T09:27:33Z
dc.contributor.departmentPHYSICS
dc.description.doi10.1038/s42005-019-0235-4
dc.description.sourcetitleCOMMUNICATIONS PHYSICS
dc.description.volume2
dc.description.issue1
dc.published.statePublished
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