Numerical modelling of a nanoplasmonic biosensor based on a Mach-Zehnder interferometer

dc.audience.educationlevelInvestigadores/Researcherses_MX
dc.contributor.advisorDe León Arizpe, Israel
dc.contributor.authorFélix Rendón, Ulises
dc.contributor.catalogerlagdtorre/tolmquevedoes_MX
dc.contributor.committeememberMartínez Chapa, Sergio Omar
dc.contributor.committeememberHernández Aranda, Raúl Ignacio
dc.contributor.departmentSchool of Engineering and Scienceses_MX
dc.contributor.institutionCampus Monterreyes_MX
dc.date.accepted2020-06-03
dc.date.accessioned2021-10-08T18:29:29Z
dc.date.available2021-10-08T18:29:29Z
dc.date.created2020-06-03
dc.date.issued2020-06-03
dc.description.abstractIn the last few decades, optical biosensors based on surface plasmon resonance (SPR) have attracted increasing attention as a label-free alternative for the detection of small traces of biological and chemical markers, for application ranging from drug discovery and medical diagnosis to food quality and national defense. These approaches exploit the high sensitivity of surface plasmons polaritons (SPPs) to variations in the refractive index of the medium surrounding a thin metal film, which is caused by adsorption of the analyte molecules in the metal-dielectric interface. However, nowadays the plasmonic biosensor platforms with best performance require of complex optical configurations and bulky instrumentation, which difficult its miniaturization capability and portability, limiting its integration with other bioanalytical tools. In this work, we propose a novel design based on a Mach-Zehnder interferometer (MZI), consisting on a gold layer with a subwavelength aperture surrounded by grooves, and a detection system based on intensity interrogation. Our proposed architecture contemplates independent control of the reference and sensing arms in a planar disposition, which allows the biosensor to operate in the region of maximum sensitivity for low-analyte concentration and avoid the requirement of using complex multilayer fabrication techniques. Through numerical simulations using the FDTD-method, we found that our platform performed satisfactorily compared to previously reported designs. Moreover, its miniaturization potential, small footprint, and simple illumination scheme make it an ideal candidate for use in integrated sensing systems, which can be further enhanced by multiplexing.es_MX
dc.description.degreeMaster of Science in Nanotechnologyes_MX
dc.format.mediumTextoes_MX
dc.identificator7||33||3399||339999es_MX
dc.identifier.citationFélix Rendón, U. (2020). Numerical modelling of a nanoplasmonic biosensor based on a Mach-Zehnder interferometer.(Maestría).Instituto Tecnológico y de Estudios Superiores de Monterrey. Recuperado de: https://hdl.handle.net/11285/640261es_MX
dc.identifier.orcidhttps://orcid.org/0000-0003-0905-6038es_MX
dc.identifier.urihttps://hdl.handle.net/11285/640261
dc.language.isoenges_MX
dc.publisherInstituto Tecnológico y de Estudios Superiores de Monterreyes_MX
dc.relation.isFormatOfversión publicadaes_MX
dc.rightsopenAccesses_MX
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0es_MX
dc.subject.classificationINGENIERÍA Y TECNOLOGÍA::CIENCIAS TECNOLÓGICAS::OTRAS ESPECIALIDADES TECNOLÓGICAS::OTRASes_MX
dc.subject.keywordMach-Zehnderes_MX
dc.subject.keywordBiosensores_MX
dc.subject.keywordInterferometeres_MX
dc.subject.keywordPlasmonices_MX
dc.subject.lcshTechnologyes_MX
dc.titleNumerical modelling of a nanoplasmonic biosensor based on a Mach-Zehnder interferometeres_MX
dc.typeTesis de maestría

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