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1.
Biosens Bioelectron ; 81: 388-394, 2016 Jul 15.
Artigo em Inglês | MEDLINE | ID: mdl-26995284

RESUMO

A novel nanoparticle based biosensor for the fast and simple detection of DNA hybridization events is presented. The sensor utilizes hybridized DNA's charge transport properties, combining them with metallic nanoparticle networks that act as nano-gapped electrodes. The DNA hybridization events can be detected by a significant reduction in the sensor's resistance due to the conductive bridging offered by hybridized DNA. By modifying the nanoparticle surface coverage, which can be controlled experimentally being a function of deposition time, and the structural properties of the electrodes, an optimized biosensor for the in situ detection of DNA hybridization events is ultimately fabricated. The fabricated biosensor exhibits a wide response range, covering four orders of magnitude, a limit of detection of 1nM and can detect a single base pair mismatch between probe and complementary DNA.


Assuntos
Técnicas Biossensoriais/instrumentação , DNA/análise , Nanopartículas Metálicas/química , Hibridização de Ácido Nucleico , Platina/química , Pareamento Incorreto de Bases , Técnicas Biossensoriais/economia , DNA/genética , Condutividade Elétrica , Técnicas Eletroquímicas/economia , Técnicas Eletroquímicas/instrumentação , Eletrodos , Desenho de Equipamento
2.
Langmuir ; 31(22): 6253-64, 2015 Jun 09.
Artigo em Inglês | MEDLINE | ID: mdl-25996202

RESUMO

Surface interface engineering using superhydrophobic gold electrodes made with 1-dodecanethiol self-assembled monolayer (SAM) has been used to enhance the current limiting properties of novel surge protection devices based on the intrinsic conducting polymer, polyaniline doped with methanesulfonic acid. The resulting devices show significantly enhanced current limiting characteristics, including current saturation, foldback, and negative differential effects. We show how SAM modification changes the morphology of the polymer film directly adjacent to the electrodes, leading to the formation of an interfacial compact thin film that lowers the contact resistance at the Au-polymer interface. We attribute the enhanced current limiting properties of the devices to a combination of lower contact resistance and increased Joule heating within this interface region which during a current surge produces a current blocking resistive barrier due to a thermally induced dedoping effect caused by the rapid diffusion of moisture away from this region. The effect is exacerbated at higher applied voltages as the higher temperature leads to stronger depletion of charge carriers in this region, resulting in a negative differential resistance effect.

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