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dc.contributor.authorGemo, E
dc.contributor.authorFaneca, J
dc.contributor.authorG.-C. Carrillo, S
dc.contributor.authorBaldycheva, A
dc.contributor.authorPernice, WHP
dc.contributor.authorBhaskaran, H
dc.contributor.authorWright, CD
dc.date.accessioned2021-03-19T10:26:25Z
dc.date.issued2021-03-16
dc.description.abstractOver the past 30 years or more, chalcogenide phase-change materials and devices have generated much scientific and industrial interest, particularly as a platform for non-volatile optical and electronic storage devices. More recently, the combination of chalcogenide phase-change materials with photonic integrated circuits has begun to be enthusiastically explored, and among many proposals, the all-photonic phase-change memory brings the memristor-type device concept to the integrated photonic platform, opening up the route to new forms of unconventional (e.g., in-memory and neuromorphic) yet practicable optical computing. For any memory or computing device, fast switching speed and low switching energy are most attractive attributes, and approaches by which speed and energy efficiency can be improved are always desirable. For phase-change material-based devices, speed and energy consumption are both enhanced the smaller the volume of phase-change material that is required to be switched between its amorphous and crystalline phases. However, in conventional integrated photonic systems, the optical readout of nanometric-sized volumes of phase-change material is problematic. Plasmonics offers a way to bypass such limitations: plasmonic resonant structures are inherently capable of harnessing and focussing optical energy on sub-wavelength scales, far beyond the capabilities of conventional optical and photonic elements. In this work, we explore various approaches to combine the three building blocks of Si-photonics, resonant plasmonic structures, and phase-change materials to deliver plasmonically enhanced integrated phase-change photonic memory and computing devices and systems, underlining the inherent technical and theoretical challenges therein.en_GB
dc.description.sponsorshipEuropean Union Horizon 2020en_GB
dc.description.sponsorshipEngineering and Physical Sciences Research Council (EPSRC)en_GB
dc.identifier.citationVol. 129 (11), article 110902en_GB
dc.identifier.doi10.1063/5.0042962
dc.identifier.grantnumber780848en_GB
dc.identifier.grantnumberEP/L015331/1en_GB
dc.identifier.urihttp://hdl.handle.net/10871/125163
dc.language.isoenen_GB
dc.publisherAIP Publishingen_GB
dc.rights© 2021 Author(s).en_GB
dc.titleA plasmonically enhanced route to faster and more energy-efficient phase-change integrated photonic memory and computing devicesen_GB
dc.typeArticleen_GB
dc.date.available2021-03-19T10:26:25Z
dc.identifier.issn0021-8979
dc.descriptionThis is the author accepted manuscript. The final version is available from AIP Publishing via the DOI in this recorden_GB
dc.descriptionData availability: The data that support the findings of this study are available from the corresponding author upon reasonable request.en_GB
dc.identifier.journalJournal of Applied Physicsen_GB
dc.rights.urihttp://www.rioxx.net/licenses/all-rights-reserveden_GB
dcterms.dateAccepted2021-02-28
rioxxterms.versionAMen_GB
rioxxterms.licenseref.startdate2021-03-16
rioxxterms.typeJournal Article/Reviewen_GB
refterms.dateFCD2021-03-19T10:24:09Z
refterms.versionFCDAM
refterms.dateFOA2021-03-19T10:26:28Z
refterms.panelBen_GB


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