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Photoacoustic Sensing of Trapped Fluids in Nanoporous Thin Films: Device Engineering and Sensing Scheme

Academic Article
Publication Date:
2018
abstract:
Accessing fluid infiltration in nanogranular coatings is an outstanding challenge, of relevance for applications ranging from nanomedicine to catalysis. A sensing platform, allowing quantifying the amount of fluid infiltrated in a nanogranular ultrathin coating, with thickness in the 10-40 nm range, is here proposed and theoretically investigated by multiscale modeling. The scheme relies on impulsive photoacoustic excitation of hypersonic mechanical breathing modes in engineered gas-phase-synthesized nanogranular metallic ultrathin films and time-resolved acousto-optical read-out of the breathing modes frequency shift upon liquid infiltration. A superior sensitivity, exceeding 26 × 103 cm2/g, is predicted upon equivalent areal mass loading of a few ng/mm2. The capability of the present scheme to discriminate among different infiltration patterns is discussed. The platform is an ideal tool to investigate nanofluidics in granular materials and naturally serves as a distributed nanogetter coating, integrating fluid sensing capabilities. The proposed scheme is readily extendable to other nanoscale and mesoscale porous materials. © 2018 American Chemical Society.
Iris type:
01.01 Articolo in rivista
Keywords:
-
List of contributors:
Caddeo, Claudia
Authors of the University:
CADDEO CLAUDIA
Handle:
https://iris.cnr.it/handle/20.500.14243/352402
Published in:
ACS APPLIED MATERIALS & INTERFACES (PRINT)
Journal
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https://www.scopus.com/record/display.uri?eid=2-s2.0-85050825436&doi=10.1021%2facsami.8b07925&origin=inward&txGid=7c3a83ca913ee57830664983d961e611#
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