Plasmonic elastic capsules as colorimetric reversible pH-microsensors

Fuente: arXiv
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Autori principali: Burel, C. A. S., Teolis, A., Alsayed, A., Murray, C. B., Donnio, B., Dreyfus, R.
Natura: Preprint
Pubblicazione: 2019
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author Burel, C. A. S.
Teolis, A.
Alsayed, A.
Murray, C. B.
Donnio, B.
Dreyfus, R.
author_facet Burel, C. A. S.
Teolis, A.
Alsayed, A.
Murray, C. B.
Donnio, B.
Dreyfus, R.
contents There is a crucial need for effective and easily dispersible colloidal microsensors able to detect local pH changes before irreversible damages caused by demineralization, corrosion, or biofilms occur. One class of such microsensors is based on molecular dyes encapsulated or dispersed either in polymer matrices or in liquid systems exhibiting different colors upon pH variations. They are efficient but often rely on sophisticated and costly syntheses, and present significant risks of leakage and photobleaching damages, which is detrimental for mainstream applications. Another approach consists in exploiting the distance-dependent plasmonic properties of metallic nanoparticles. Still, assembling nanoparticles into dispersible colloidal pH-sensitive sensors remains a challenge. Here, we show how to combine optically active plasmonic gold nanoparticles and pH-responsive thin shells into "plasmocapsules". Upon pH change, plasmocapsules swell or shrink. Concomitantly, the distance between the gold nanoparticles embedded in the polymeric matrix varies, resulting in an unambiguous color change. Billions of micron-size sensors can thus be easily fabricated. They are non-intrusive, reusable, and sense local pH changes. Each plasmocapsule is an independent reversible microsensor over a large pH range. Finally, we demonstrate their potential use for the detection of bacterial growth, thus proving that plasmocapsules are a new class of sensing materials.
format Preprint
id arxiv_https___arxiv_org_abs_1909_07204
institution arXiv
publishDate 2019
record_format arxiv
spellingShingle Plasmonic elastic capsules as colorimetric reversible pH-microsensors
Burel, C. A. S.
Teolis, A.
Alsayed, A.
Murray, C. B.
Donnio, B.
Dreyfus, R.
Applied Physics
Soft Condensed Matter
There is a crucial need for effective and easily dispersible colloidal microsensors able to detect local pH changes before irreversible damages caused by demineralization, corrosion, or biofilms occur. One class of such microsensors is based on molecular dyes encapsulated or dispersed either in polymer matrices or in liquid systems exhibiting different colors upon pH variations. They are efficient but often rely on sophisticated and costly syntheses, and present significant risks of leakage and photobleaching damages, which is detrimental for mainstream applications. Another approach consists in exploiting the distance-dependent plasmonic properties of metallic nanoparticles. Still, assembling nanoparticles into dispersible colloidal pH-sensitive sensors remains a challenge. Here, we show how to combine optically active plasmonic gold nanoparticles and pH-responsive thin shells into "plasmocapsules". Upon pH change, plasmocapsules swell or shrink. Concomitantly, the distance between the gold nanoparticles embedded in the polymeric matrix varies, resulting in an unambiguous color change. Billions of micron-size sensors can thus be easily fabricated. They are non-intrusive, reusable, and sense local pH changes. Each plasmocapsule is an independent reversible microsensor over a large pH range. Finally, we demonstrate their potential use for the detection of bacterial growth, thus proving that plasmocapsules are a new class of sensing materials.
title Plasmonic elastic capsules as colorimetric reversible pH-microsensors
topic Applied Physics
Soft Condensed Matter
url https://arxiv.org/abs/1909.07204