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A hybrid optoelectronic Mott insulator

dc.contributor.authorNavarro, H.
dc.contributor.authorValle, J. del
dc.contributor.authorKalcheim, Y.
dc.contributor.authorVargas, N. M.
dc.contributor.authorAdda, C.
dc.contributor.authorLee, Lee, M. -H.
dc.contributor.authorLapa, P.
dc.contributor.authorRivera Calzada, Alberto Carlos
dc.contributor.authorZaluzhnyy, I. A.
dc.contributor.authorQiu, E.
dc.contributor.authorShpyrko, O.
dc.contributor.authorRozenberg, M.
dc.contributor.authorFrano, A.
dc.contributor.authorSchuller, Ivan K.
dc.date.accessioned2023-06-17T09:04:15Z
dc.date.available2023-06-17T09:04:15Z
dc.date.issued2021-04-05
dc.description©2021 American Institute of Physics We thank R. C. Dynes, A. Hoffmann, J. A. Schuller, and Y. Takamura for useful conversations. We thank Francisco Schuller for supplying the Au for the electrodes. This collaborative work was supported as part of the "Quantum Materials for Energy Efficient Neuromorphic Computing" (Q-MEEN-C), an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences under the Award No. DE-SC0019273. A.R.-C. thanks the economic support of the mobility research program Salvador de Madariaga from Spanish Ministry of Science.
dc.description.abstractThe coupling of electronic degrees of freedom in materials to create "hybridized functionalities" is a holy grail of modern condensed matter physics that may produce versatile mechanisms of control. Correlated electron systems often exhibit coupled degrees of freedom with a high degree of tunability which sometimes lead to hybridized functionalities based on external stimuli. However, the mechanisms of tunability and the sensitivity to external stimuli are determined by intrinsic material properties which are not always controllable. A Mott metal-insulator transition (MIT) is technologically attractive due to the large changes in resistance, tunable by doping, strain, electric fields, and orbital occupancy but not, in and of itself, controllable with light. Here, an alternate approach is presented to produce optical functionalities using a properly engineered photoconductor/strongly correlated hybrid heterostructure. This approach combines a photoconductor, which does not exhibit an MIT, with a strongly correlated oxide, which is not photoconducting. Due to the intimate proximity between the two materials, the heterostructure exhibits giant volatile and nonvolatile, photoinduced resistivity changes with substantial shifts in the MIT transition temperatures. This approach can be extended to other judicious combinations of strongly correlated materials.
dc.description.departmentDepto. de Física de Materiales
dc.description.facultyFac. de Ciencias Físicas
dc.description.refereedTRUE
dc.description.sponsorshipMinisterio de Ciencia e Innovación (MICINN)
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/65307
dc.identifier.doi10.1063/5.0044066
dc.identifier.issn0003-6951
dc.identifier.officialurlhttp://dx.doi.org/10.1063/5.0044066
dc.identifier.relatedurlhttps://aip.scitation.org/
dc.identifier.urihttps://hdl.handle.net/20.500.14352/8093
dc.issue.number14
dc.journal.titleApplied physics letters
dc.language.isoeng
dc.publisherAmerican Institute of Physics
dc.relation.projectIDPrograma Salvador de Madariaga
dc.rightsAtribución 3.0 España
dc.rights.accessRightsopen access
dc.rights.urihttps://creativecommons.org/licenses/by/3.0/es/
dc.subject.cdu538.9
dc.subject.keywordPhysics applied
dc.subject.ucmFísica de materiales
dc.subject.ucmFísica del estado sólido
dc.subject.unesco2211 Física del Estado Sólido
dc.titleA hybrid optoelectronic Mott insulator
dc.typejournal article
dc.volume.number118
dspace.entity.typePublication
relation.isAuthorOfPublication65d45b0a-357f-4ec4-9f97-0ffd3e1cbdcc
relation.isAuthorOfPublication.latestForDiscovery65d45b0a-357f-4ec4-9f97-0ffd3e1cbdcc

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