Multipurpose silicon photonics signal processor core

dc.contributor.affiliationEscuela Técnica Superior de Ingeniería de Telecomunicación
dc.contributor.affiliationDepartamento de Comunicaciones
dc.contributor.affiliationInstituto Universitario de Telecomunicación y Aplicaciones Multimedia
dc.contributor.affiliationEscuela Politécnica Superior de Gandia
dc.contributor.authorPérez-López, Danieles_ES
dc.contributor.authorGasulla Mestre, Ivana
dc.contributor.authorCrudgington, Leees_ES
dc.contributor.authorThomson, David J.es_ES
dc.contributor.authorKhokhar, Ali Z.es_ES
dc.contributor.authorLi, Kees_ES
dc.contributor.authorCao, Weies_ES
dc.contributor.authorMashanovich, Goran Z.es_ES
dc.contributor.authorCapmany Francoy, José
dc.contributor.funderEuropean Research Counciles_ES
dc.contributor.funderMinisterio de Economía y Competitividad
dc.contributor.funderUniversitat Politècnica de València
dc.contributor.funderRoyal Society, Reino Unido
dc.contributor.funderEuropean Commission
dc.date.accessioned2018-06-02T04:19:25Z
dc.date.available2018-06-02T04:19:25Z
dc.date.issued2017es_ES
dc.description.abstract[EN] Integrated photonics changes the scaling laws of information and communication systems offering architectural choices that combine photonics with electronics to optimize performance, power, footprint, and cost. Application-specific photonic integrated circuits, where particular circuits/chips are designed to optimally perform particular functionalities, require a considerable number of design and fabrication iterations leading to long development times. A different approach inspired by electronic Field Programmable Gate Arrays is the programmable photonic processor, where a common hardware implemented by a two-dimensional photonic waveguide mesh realizes different functionalities through programming. Here, we report the demonstration of such reconfigurable waveguide mesh in silicon. We demonstrate over 20 different functionalities with a simple seven hexagonal cell structure, which can be applied to different fields including communications, chemical and biomedical sensing, signal processing, multiprocessor networks, and quantum information systems. Our work is an important step toward this paradigm.en_EN
dc.description.accrualMethodSes_ES
dc.description.bibliographicCitationPérez-López, D.; Gasulla Mestre, I.; Crudgington, L.; Thomson, DJ.; Khokhar, AZ.; Li, K.; Cao, W.... (2017). Multipurpose silicon photonics signal processor core. Nature Communications. 8(1925):1-9. https://doi.org/10.1038/s41467-017-00714-1es_ES
dc.description.issue1925es_ES
dc.description.referencesDoerr, C. R. & Okamoto, K. Advances in silica planar lightwave circuits. J. Lightw. Technol. 24, 4763–4789 (2006).es_ES
dc.description.referencesColdren, L. A. et al. High performance InP-based photonic ICs—A tutorial. J. Lightw. Technol 29, 554–570 (2011).es_ES
dc.description.referencesSoref, R. The past, present, and future of silicon photonics. IEEE J. Sel. Top. Quantum Electron. 12, 1678–1687 (2006).es_ES
dc.description.referencesBogaerts, W. Design challenges in silicon photonics. IEEE J. Sel. Top. Quantum Electron. 20, 8202008 (2014).es_ES
dc.description.referencesBogaerts, W. et al. Nanophotonic waveguides in silicon-on-insulator fabricated with CMOS technology. J. Lightw. Technol. 23, 401–412 (2005).es_ES
dc.description.referencesSmit, M. K. et al. An introduction to InP-based generic integration technology. Semicond. Sci. Technol. 29, 083001 (2014).es_ES
dc.description.referencesLeinse, A. et al. TriPleX waveguide platform: low-loss technology over a wide wavelength range. Proc. SPIE 8767, 87670E (2013).es_ES
dc.description.referencesKish, F. et al. From visible light-emitting diodes to large-scale III–V photonic integrated circuits. Proc. IEEE 101, 2255–2270 (2013).es_ES
dc.description.referencesHeck, M. J. R. et al. Hybrid silicon photonic integrated circuit technology. IEEE J. Sel. Top. Quantum Electron. 19, 6100117 (2013).es_ES
dc.description.referencesSacher, W. et al. Multilayer silicon nitride-on-silicon integrated photonic platforms and devices. J. Lightw. Technol. 33, 901–910 (2015).es_ES
dc.description.referencesAsghari, M. Silicon photonics: A low cost integration platform for datacom and telecom applications. In OFC/NFOEC 2008 – 2008 Conference on Optical Fiber Communication/National Fiber Optic Engineers Conference 1–10 (San Diego, USA, 2008).es_ES
dc.description.referencesMelati, D. et al. Integrated all-optical MIMO demultiplexer for mode- and wavelength-division-multiplexed transmission. Opt. Lett. 42, 342–345 (2017).es_ES
dc.description.referencesWaterhouse, R. & Novak, D. Realizing 5G: microwave photonics for 5G mobile wireless systems. IEEE Microw. Mag. 16, 84–92 (2015).es_ES
dc.description.referencesMarpaung, D. et al. Integrated microwave photonics. Laser Photon. Rev. 7, 506–538 (2013).es_ES
dc.description.referencesIezekiel, S., Burla, M., Klamkin, J., Marpaung, D. & Capmany, J. RF engineering meets optoelectronics: Progress in integrated microwave photonics. IEEE Microw. Mag. 16, 28–45 (2015).es_ES
dc.description.referencesTechnology focus on microwave photonics. Nat. Photon. 5, 723 (2011).es_ES
dc.description.referencesGhelfi, P. et al. A fully photonics-based coherent radar system. Nature 507, 341–345 (2014).es_ES
dc.description.referencesHeideman, R. G. TriPleX™-based integrated optical ring resonators for lab-ona-chip-and environmental detection. IEEE J. Sel. Top. Quantum Electron. 18, 1583–1596 (2012).es_ES
dc.description.referencesEstevez, M. C., Alvarez, M. & Lechuga, L. Integrated optical devices for lab-on-a-chip biosensing applications. Laser Photon. Rev. 6, 463–487 (2012).es_ES
dc.description.referencesAlmeida, V. R., Barrios, C. A., Panepucci, R. & Lipson, M. All-optical control of light on a silicon chip. Nature 431, 1081–1084 (2004).es_ES
dc.description.referencesNorberg, E. J., Guzzon, R. S., Parker, J. S., Johansson, L. A. & Coldren, L. A. Programmable photonic microwave filters monolithically integrated in InP/InGaAsP. J. Lightw. Technol. 29, 1611–1619 (2011).es_ES
dc.description.referencesWang, J. et al. Reconfigurable radio-frequency arbitrary waveforms synthesized in a silicon photonic chip. Nat. Commun. 6, 5957 (2015).es_ES
dc.description.referencesHill, M. T. et al. A fast low power optical memory based on coupled micro-ring lasers. Nature 432, 206–209 (2004).es_ES
dc.description.referencesSlavík, R. et al. Photonic temporal integrator for all-optical computing. Opt. Express 16, 18202–18214 (2008).es_ES
dc.description.referencesSun, C. et al. A monolithically-integrated chip-to-chip optical link in bulk CMOS. IEEE J. Solid-State Circ. 50, 828–844 (2015).es_ES
dc.description.referencesSun, C. et al. Single-chip microprocessor that communicates directly using light. Nature 528, 534–538 (2015).es_ES
dc.description.referencesAssefa, S. et al. in Optical Fibre Communication Conference OMM6, https://www.osapublishing.org/abstract.cfm?uri=OFC-2011-OMM6 (Optical Society of America, 2011).es_ES
dc.description.referencesPeruzzo, A. et al. Multimode quantum interference of photons in multiport integrated devices. Nat. Commun. 2, 224 (2011).es_ES
dc.description.referencesBonneau, D. et al. Quantum interference and manipulation of entanglement in silicon wire waveguide quantum circuits. N. J. Phys. 14, 045003 (2012).es_ES
dc.description.referencesMetcalf, B. J. et al. Multiphoton quantum interference in a multiport integrated photonic device. Nat. Commun. 4, 1356 (2013).es_ES
dc.description.referencesMuñoz, P. et al. in 16th International Conference on Transparent Optical Networks (ICTON), 1–4 (Graz, 2014).es_ES
dc.description.referencesRibeiro, A. et al. Demonstration of a 4×4-port universal linear circuit. Optica 3, 1348–1357 (2016).es_ES
dc.description.referencesLiu, W. et al. A fully reconfigurable photonic integrated signal processor. Nat. Photon 10, 190–195 (2016).es_ES
dc.description.referencesGraydon, O. Birth of the programmable optical chip. Nat. Photon 10, 1 (2016).es_ES
dc.description.referencesPérez, D., Gasulla, I. & Capmany, J. Software-defined reconfigurable microwave photonics processor. Opt. Express 23, 14640–14654 (2015).es_ES
dc.description.referencesMiller, D. A. B. Self-configuring universal linear optical component. Photon. Res. 1, 1–15 (2013).es_ES
dc.description.referencesMiller, D. A. B. Self-aligning universal beam coupler. Opt. Express 21, 6360–6370 (2013).es_ES
dc.description.referencesClements, W. R. et al. Optimal design for universal multiport interferometers. Optica 3, 1460–1465 (2016).es_ES
dc.description.referencesZhuang, L., Roeloffzen, C. G. H., Hoekman, M., Boller, K.-J. & Lowery, A. J. Programmable photonic signal processor chip for radiofrequency applications. Optica 2, 854–859 (2015).es_ES
dc.description.referencesCapmany, J., Gasulla, I. & Pérez, D. Microwave photonics: The programmable processor. Nat. Photon. 10, 6–8 (2016).es_ES
dc.description.referencesPérez, D., Gasulla., Capmany, J. & Soref, R. A. Reconfigurable lattice mesh designs for programmable photonic processors. Opt. Express 24, 12093–12106 (2016).es_ES
dc.description.referencesMadsen, C. K. & Zhao, J. H. Optical Filter Design and Analysis: A Signal Processing Approach. 1st edn. (Wiley, 1999).es_ES
dc.description.referencesJinguji, K. Synthesis of coherent two-port lattice-form optical delay-line circuit. J. Lightw. Technol. 13, 73–82 (1995).es_ES
dc.description.referencesJinguji, K. Synthesis of coherent two-port Optical delay-line circuit with ring waveguides. J. Lightw. Technol. 14, 1882–1898 (1996).es_ES
dc.description.referencesMadsen, C. K. General IIR optical filter design for WDM applications using all-pass filters. J. Lightw. Technol. 18, 860–868 (2000).es_ES
dc.description.referencesBurla, M. et al. On-chip CMOS compatible reconfigurable optical delay line with separate carrier tuning for microwave photonic signal processing. Opt. Express 19, 21475–21484 (2011).es_ES
dc.description.referencesYariv, A. et al. Coupled resonator optical waveguides: a proposal and analysis. Opt. Lett. 24, 711–713 (1999).es_ES
dc.description.referencesHebner, J. E. et al. Distributed and localized feedback in microresonator sequences for linear and nonlinear optics. J. Opt. Soc. Am. B. 21, 1665–1673 (2004).es_ES
dc.description.referencesFandiño, J. S. et al. A monolithic integrated photonic microwave filter. Nat. Photon. 11, 124–129 (2017).es_ES
dc.description.referencesMiller, D. A. B. All linear optical devices are mode converters. Opt. Express 20, 23985–23993 (2012).es_ES
dc.description.referencesReck, M. et al. Experimental realization of any discrete unitary operator. Phys. Rev. Lett. 73, 58–61 (1994).es_ES
dc.description.referencesCarolan, J. et al. Universal linear optics. Science 349, 711 (2015).es_ES
dc.description.referencesNielsen, M. A. & Chuang, I. L. Quantum Computation and Quantum Information. 1st edn. (Cambridge University Press, 2001).es_ES
dc.description.referencesMiller, D. A. B. Perfect optics with imperfect components. Optica 2, 747–750 (2015).es_ES
dc.description.referencesGrillanda, S. et al. Non-invasive monitoring and control in silicon photonics using CMOS integrated electronics. Optica 1, 129–136 (2014).es_ES
dc.description.sponsorshipJ.C. acknowledges funding from the ERC Advanced Grant ERC-ADG-2016-741415 UMWP-Chip, I.G. acknowledges the funding through the Spanish MINECO Ramon y Cajal program. D.P. acknowledges financial support from the UPV through the FPI predoctoral funding scheme. D.J.T. acknowledges funding from the Royal Society for his University Research Fellowship.
dc.description.upvformatpfin9es_ES
dc.description.upvformatpinicio1es_ES
dc.description.volume8es_ES
dc.identifier.doi10.1038/s41467-017-00714-1es_ES
dc.identifier.issn2041-1723es_ES
dc.identifier.pmcidPMC5608755en_EN
dc.identifier.pmid28935924en_EN
dc.identifier.urihttps://riunet.upv.es/handle/10251/103228
dc.languageIngléses_ES
dc.publisherNature Publishing Groupes_ES
dc.relation.ispartofNature Communicationses_ES
dc.relation.pasarelaS\349423es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/EC/H2020/741415/EU/Universal microwave photonics programmable processor for seamlessly interfacing wireless and optical ICT systems/UMWP-CHIP/
dc.relation.publisherversionhttp://doi.org/10.1038/s41467-017-00714-1es_ES
dc.relation.references10.1109/JLT.2006.885255es_ES
dc.relation.references10.1109/JLT.2010.2100807es_ES
dc.relation.references10.1109/JSTQE.2006.883151es_ES
dc.relation.references10.1109/JSTQE.2013.2295882es_ES
dc.relation.references10.1109/JLT.2004.834471es_ES
dc.relation.references10.1117/12.2020574es_ES
dc.relation.references10.1109/JPROC.2013.2275018es_ES
dc.relation.references10.1109/JSTQE.2012.2235413es_ES
dc.relation.references10.1109/JLT.2015.2392784es_ES
dc.relation.references10.1109/OFC.2008.4528277es_ES
dc.relation.references10.1364/OL.42.000342es_ES
dc.relation.references10.1109/MMM.2015.2441593es_ES
dc.relation.references10.1002/lpor.201200032es_ES
dc.relation.references10.1109/MMM.2015.2442932es_ES
dc.relation.references10.1038/nphoton.2011.316es_ES
dc.relation.references10.1038/nature13078es_ES
dc.relation.references10.1109/JSTQE.2012.2188382es_ES
dc.relation.references10.1002/lpor.201100025es_ES
dc.relation.references10.1038/nature02921es_ES
dc.relation.references10.1109/JLT.2011.2134073es_ES
dc.relation.references10.1038/ncomms6957es_ES
dc.relation.references10.1038/nature03045es_ES
dc.relation.references10.1364/OE.16.018202es_ES
dc.relation.references10.1109/JSSC.2014.2382101es_ES
dc.relation.references10.1038/nature16454es_ES
dc.relation.references10.1038/ncomms1228es_ES
dc.relation.references10.1088/1367-2630/14/4/045003es_ES
dc.relation.references10.1038/ncomms2349es_ES
dc.relation.references10.1364/OPTICA.3.001348es_ES
dc.relation.references10.1038/nphoton.2015.281es_ES
dc.relation.references10.1038/nphoton.2015.265es_ES
dc.relation.references10.1364/OE.23.014640es_ES
dc.relation.references10.1364/PRJ.1.000001es_ES
dc.relation.references10.1364/OE.21.006360es_ES
dc.relation.references10.1364/OPTICA.3.001460es_ES
dc.relation.references10.1364/OPTICA.2.000854es_ES
dc.relation.references10.1038/nphoton.2015.254es_ES
dc.relation.references10.1364/OE.24.012093es_ES
dc.relation.references10.1002/0471213756es_ES
dc.relation.references10.1109/50.350643es_ES
dc.relation.references10.1109/50.532026es_ES
dc.relation.references10.1109/50.848399es_ES
dc.relation.references10.1364/OE.19.021475es_ES
dc.relation.references10.1364/OL.24.000711es_ES
dc.relation.references10.1364/JOSAB.21.001665es_ES
dc.relation.references10.1038/nphoton.2016.233es_ES
dc.relation.references10.1364/OE.20.023985es_ES
dc.relation.references10.1103/PhysRevLett.73.58es_ES
dc.relation.references10.1126/science.aab3642es_ES
dc.relation.references10.1364/OPTICA.2.000747es_ES
dc.relation.references10.1364/OPTICA.1.000129es_ES
dc.rightsReconocimiento (by)es_ES
dc.rights.accessRightsAbiertoes_ES
dc.subject.classificationTEORIA DE LA SEÑAL Y COMUNICACIONESes_ES
dc.titleMultipurpose silicon photonics signal processor corees_ES
dc.typeArtículoes_ES
dc.type.versioninfo:eu-repo/semantics/publishedVersiones_ES
dspace.entity.typePublication
person.identifier64107
person.identifier2324
person.identifier.orcid0000-0001-8088-7796
person.identifier.orcid0000-0002-6460-4167
relation.isAuthorOfPublication098fcd18-b437-4137-9bb1-4e1c87617ce9
relation.isAuthorOfPublication083eaf43-bcbb-49d5-b25c-9fa3bf92539f
relation.isAuthorOfPublication.latestForDiscovery098fcd18-b437-4137-9bb1-4e1c87617ce9
relation.isOrgUnitOfPublicationaa6a0db9-4584-45eb-b7e3-73606ac49444
relation.isOrgUnitOfPublication02a0f2c5-c452-4e1d-a7d9-b731347d078c
relation.isOrgUnitOfPublication7eb466f9-a4ba-4215-bab2-52a6a5dd6c63
relation.isOrgUnitOfPublication1db03441-9881-4e7e-a0a9-daca18341155
relation.isOrgUnitOfPublication.latestForDiscoveryaa6a0db9-4584-45eb-b7e3-73606ac49444
upv.uuidf915e264-4269-4f54-8622-e2399a7b04fees_ES

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
s41467-017-00714-1.pdf
Tamaño:
2.92 MB
Formato:
Adobe Portable Document Format
Descripción:
Versión editorial