Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications

The sensing of toxic pollutants in solution and hazardous vapors in air is highly important for early recognition and prevention of natural disasters, diseases, and terrorism activities. Current commercial sensing methods such as fluorescence, UV-vis and chromatography do not provide sufficient mole...

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Main Author: Phan-Quang, Gia Chuong
Other Authors: Ling Xing Yi
Format: Thesis-Doctor of Philosophy
Language:English
Published: Nanyang Technological University 2019
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Online Access:https://hdl.handle.net/10356/136560
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1365602023-02-28T23:44:47Z Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications Phan-Quang, Gia Chuong Ling Xing Yi School of Physical and Mathematical Sciences XYLing@ntu.edu.sg Science::Physics The sensing of toxic pollutants in solution and hazardous vapors in air is highly important for early recognition and prevention of natural disasters, diseases, and terrorism activities. Current commercial sensing methods such as fluorescence, UV-vis and chromatography do not provide sufficient molecular fingerprints of target analytes to prevent false positives from similar molecules. As a temporary solution, surface-enhanced Raman scattering (SERS) has enabled ultratrace detection with highly specific molecular information, yet suffers the need for stringent laser alignment while only capable of static measurements due to the use of rigid 2D substrates. This thesis introduces ‘plasmonic colloidosomes’ – micron-sized water droplets coated with Ag nanoparticles – as 3D substrate-less platforms to tackle the above problems in sensing and SERS spectroscopy. These droplets possess a robust, spherical and highly SERS active plasmonic shells comprising of Ag nanoparticle clusters, allowing their establishment as the first “dual-phase tri-analyte” detection system, as demonstrated in Chapter 2. Such breakthrough in biphasic molecular sensing across liquid-liquid interface allows us to directly investigate ultrasmall interfacial reactions. In particular, Chapter 3 discusses the seamless SERS monitoring of dimethyl yellow interfacial protonation performed on plasmonic colloidosomes, which reveals the presence of two highly similar products. Chapter 4 presents the incorporation of plasmonic colloidosomes with online sensing device, realizing the rapid high through-put analysis of multiple samples. A highlight of our work, as described in Chapter 5, is the preparation of the world’s first macroscale 3D SERS ‘in-air sensing’ platform, by incorporating the colloidosomes within an liquid aerosol. These achievements also represent a giant leap towards the potential development of stand-off and substrate-less spectroscopic methodology to detect gas toxins/airborne weapons remotely. Doctor of Philosophy 2019-12-30T02:03:54Z 2019-12-30T02:03:54Z 2019 Thesis-Doctor of Philosophy Phan-Quang, G. C. (2019). Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/136560 10.32657/10356/136560 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
spellingShingle Science::Physics
Phan-Quang, Gia Chuong
Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
description The sensing of toxic pollutants in solution and hazardous vapors in air is highly important for early recognition and prevention of natural disasters, diseases, and terrorism activities. Current commercial sensing methods such as fluorescence, UV-vis and chromatography do not provide sufficient molecular fingerprints of target analytes to prevent false positives from similar molecules. As a temporary solution, surface-enhanced Raman scattering (SERS) has enabled ultratrace detection with highly specific molecular information, yet suffers the need for stringent laser alignment while only capable of static measurements due to the use of rigid 2D substrates. This thesis introduces ‘plasmonic colloidosomes’ – micron-sized water droplets coated with Ag nanoparticles – as 3D substrate-less platforms to tackle the above problems in sensing and SERS spectroscopy. These droplets possess a robust, spherical and highly SERS active plasmonic shells comprising of Ag nanoparticle clusters, allowing their establishment as the first “dual-phase tri-analyte” detection system, as demonstrated in Chapter 2. Such breakthrough in biphasic molecular sensing across liquid-liquid interface allows us to directly investigate ultrasmall interfacial reactions. In particular, Chapter 3 discusses the seamless SERS monitoring of dimethyl yellow interfacial protonation performed on plasmonic colloidosomes, which reveals the presence of two highly similar products. Chapter 4 presents the incorporation of plasmonic colloidosomes with online sensing device, realizing the rapid high through-put analysis of multiple samples. A highlight of our work, as described in Chapter 5, is the preparation of the world’s first macroscale 3D SERS ‘in-air sensing’ platform, by incorporating the colloidosomes within an liquid aerosol. These achievements also represent a giant leap towards the potential development of stand-off and substrate-less spectroscopic methodology to detect gas toxins/airborne weapons remotely.
author2 Ling Xing Yi
author_facet Ling Xing Yi
Phan-Quang, Gia Chuong
format Thesis-Doctor of Philosophy
author Phan-Quang, Gia Chuong
author_sort Phan-Quang, Gia Chuong
title Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
title_short Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
title_full Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
title_fullStr Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
title_full_unstemmed Plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
title_sort plasmonic colloidosomes: dynamic three-dimensional platform for biphasic, microfluidic and airborne surface-enhanced raman scattering applications
publisher Nanyang Technological University
publishDate 2019
url https://hdl.handle.net/10356/136560
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