2 research outputs found
Pillar[5]arene-Based Supramolecular Plasmonic Thin Films for Label-Free, Quantitative and Multiplex SERS Detection
Novel
plasmonic thin films based on electrostatic layer-by-layer (LbL) deposition
of citrate-stabilized Au nanoparticles (NPs) and ammonium pillar[5]Āarene
(AP[5]ĀA) have been developed. The supramolecular-induced LbL assembly
of the plasmonic nanoparticles yields the formation of controlled
hot spots with uniform interparticle distances. At the same time,
this strategy allows modulating the density and dimensions of the
Au aggregates, and therefore the optical response, on the thin film
with the number of AuNP-AP[5]ĀA deposition cycles. Characterization
of the AuNP-AP[5]ĀA hybrid platforms as a function of the deposition
cycles was performed by means of visibleāNIR absorption spectroscopy,
and scanning electron and atomic force microscopies, showing larger
aggregates with the number of cycles. Additionally, the surface enhanced
Raman scattering efficiency of the resulting AuNP-AP[5]ĀA thin films
has been investigated for three different laser excitations (633,
785, and 830 nm) and using pyrene as Raman probe. The best performance
was shown by the AuNP-AP[5]ĀA film obtained with two deposition cycles
((AuNP-APĀ[5]ĀA)<sub>2</sub>) when excited with a 785 laser line. The
optical response and SERS efficiency of the thin films were also simulated
using the M<sup>3</sup> solver and employing computer aided design
models built based on SEM images of the different films. The use of host molecules as building blocks to fabricate (AuNP-AP[5]ĀA)<sub>2</sub>) films has enabled the ultradetection, in liquid and gas
phase, of low molecular weight polyaromatic hydrocarbons, <i>PAHs</i>, with no <i>affinity</i> for gold but toward
the hydrophobic AP[5]ĀA cavity. Besides, these plasmonic platforms
allowed achieving quantitative detection within certain concentration
regimes. Finally, the multiplex sensing capabilities of the AuNP-AP[5]ĀA)<sub>2</sub> were evaluated for their ability to detect in liquid and
gas phase three different PAHs