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Graphene-enhanced plasmonic nanohole arrays for environmental sensing in aqueous samples. | LitMetric

Graphene-enhanced plasmonic nanohole arrays for environmental sensing in aqueous samples.

Beilstein J Nanotechnol

Institute of Analytical Chemistry, Chemo and Biosensors, University of Regensburg, 93040 Regensburg, Germany.

Published: November 2016

AI Article Synopsis

  • The study highlights how gold nanohole arrays enhance surface plasmon resonance (SPR) techniques, leading to better detection of low concentrations and small molecules compared to continuous gold films.
  • A reduced graphene oxide (rGO) layer on the nanohole array improves response times and captures molecular interactions more effectively, demonstrating a significant increase in resonance angle shifts.
  • The research showcases an application monitoring the binding of diethyl phthalate (DEP) in various water samples, indicating potential improvements in SPR sensor sensitivity for environmental assessments.

Article Abstract

The label-free nature of surface plasmon resonance techniques (SPR) enables a fast, specific, and sensitive analysis of molecular interactions. However, detection of highly diluted concentrations and small molecules is still challenging. It is shown here that in contrast to continuous gold films, gold nanohole arrays can significantly improve the performance of SPR devices in angle-dependent measurement mode, as a signal amplification arises from localized surface plasmons at the nanostructures. This leads consequently to an increased sensing capability of molecules bound to the nanohole array surface. Furthermore, a reduced graphene oxide (rGO) sensor surface was layered over the nanohole array. Reduced graphene oxide is a 2D nanomaterial consisting of sp-hybridized carbon atoms and is an attractive receptor surface for SPR as it omits any bulk phase and therefore allows fast response times. In fact, it was found that nanohole arrays demonstrated a higher shift in the resonance angle of 250-380% compared to a continuous gold film. At the same time the nanohole array structure as characterized by its diameter-to-periodicity ratio had minimal influence on the binding capacity of the sensor surface. As a simple and environmentally highly relevant model, binding of the plasticizer diethyl phthalate (DEP) via π-stacking was monitored on the rGO gold nanohole array realizing a limit of detection of as low as 20 nM. The concentration-dependent signal change was studied with the best performing rGO-modified nanohole arrays. Compared to continuous gold films a diameter-to-periodicity ratio (/) of 0.43 lead to a 12-fold signal enhancement. Finally, the effect of environmental waters on the sensor was evaluated using samples from sea, lake and river waters spiked with analytically relevant amounts of DEP during which significant changes in the SPR signal are observed. It is expected that this concept can be successfully transferred to enhance the sensitivity in SPR sensors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5238696PMC
http://dx.doi.org/10.3762/bjnano.7.150DOI Listing

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