Aluminum Nanoholes for Optical Biosensing

[EN] Sub-wavelength diameter holes in thin metal layers can exhibit remarkable optical features that make them highly suitable for (bio)sensing applications. Either as efficient light scattering centers for surface plasmon excitation or metal-clad optical waveguides, they are able to form strongly l...

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Detalhes bibliográficos
Autores: Angulo Barrios, Carlos, Canalejas Tejero, Víctor, Herranz, Sonia, Urraca, Javier, Moreno-Bondi, María Cruz, Avella-Oliver, Miquel|||0000-0002-7293-6989, Maquieira, Angel|||0000-0003-4641-4957, Puchades, Rosa|||0000-0002-9329-1593
Tipo de documento: artigo
Data de publicação:2015
País:España
Recursos:Universitat Politècnica de València (UPV)
Repositório:RiuNet. Repositorio Institucional de la Universitat Politécnica de Valéncia
Idioma:inglês
OAI Identifier:oai:riunet.upv.es:10251/66037
Acesso em linha:https://riunet.upv.es/handle/10251/66037
Access Level:Acceso aberto
Palavra-chave:Aluminum
Metal nanoholes
Nanohole arrays
Surface plasmon resonance
Optical biosensing
Nanopatterning
Transfer printing
Molecularly imprinted polymer
Photopolymerization
QUIMICA ANALITICA
Descrição
Resumo:[EN] Sub-wavelength diameter holes in thin metal layers can exhibit remarkable optical features that make them highly suitable for (bio)sensing applications. Either as efficient light scattering centers for surface plasmon excitation or metal-clad optical waveguides, they are able to form strongly localized optical fields that can effectively interact with biomolecules and/or nanoparticles on the nanoscale. As the metal of choice, aluminum exhibits good optical and electrical properties, is easy to manufacture and process and, unlike gold and silver, its low cost makes it very promising for commercial applications. However, aluminum has been scarcely used for biosensing purposes due to corrosion and pitting issues. In this short review, we show our recent achievements on aluminum nanohole platforms for (bio)sensing. These include a method to circumvent aluminum degradation-which has been successfully applied to the demonstration of aluminum nanohole array (NHA) immunosensors based on both, glass and polycarbonate compact discs supports-the use of aluminum nanoholes operating as optical waveguides for synthesizing submicron-sized molecularly imprinted polymers by local photopolymerization, and a technique for fabricating transferable aluminum NHAs onto flexible pressure-sensitive adhesive tapes, which could facilitate the development of a wearable technology based on aluminum NHAs.