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Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution

[Image: see text] Time-resolved measurements of changes in the size and shape of nanobiological objects and layers are crucial to understand their properties and optimize their performance. Optical sensing is particularly attractive with high throughput and sensitivity, and label-free operation. How...

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Autores principales: Nugroho, Ferry Anggoro Ardy, Świtlik, Dominika, Armanious, Antonius, O’Reilly, Padraic, Darmadi, Iwan, Nilsson, Sara, Zhdanov, Vladimir P., Höök, Fredrik, Antosiewicz, Tomasz J., Langhammer, Christoph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9620406/
https://www.ncbi.nlm.nih.gov/pubmed/36083800
http://dx.doi.org/10.1021/acsnano.2c04948
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author Nugroho, Ferry Anggoro Ardy
Świtlik, Dominika
Armanious, Antonius
O’Reilly, Padraic
Darmadi, Iwan
Nilsson, Sara
Zhdanov, Vladimir P.
Höök, Fredrik
Antosiewicz, Tomasz J.
Langhammer, Christoph
author_facet Nugroho, Ferry Anggoro Ardy
Świtlik, Dominika
Armanious, Antonius
O’Reilly, Padraic
Darmadi, Iwan
Nilsson, Sara
Zhdanov, Vladimir P.
Höök, Fredrik
Antosiewicz, Tomasz J.
Langhammer, Christoph
author_sort Nugroho, Ferry Anggoro Ardy
collection PubMed
description [Image: see text] Time-resolved measurements of changes in the size and shape of nanobiological objects and layers are crucial to understand their properties and optimize their performance. Optical sensing is particularly attractive with high throughput and sensitivity, and label-free operation. However, most state-of-the-art solutions require intricate modeling or multiparameter measurements to disentangle conformational or thickness changes of biomolecular layers from complex interfacial refractive index variations. Here, we present a dual-band nanoplasmonic ruler comprising mixed arrays of plasmonic nanoparticles with spectrally separated resonance peaks. As electrodynamic simulations and model experiments show, the ruler enables real-time simultaneous measurements of thickness and refractive index variations in uniform and heterogeneous layers with sub-nanometer resolution. Additionally, nanostructure shape changes can be tracked, as demonstrated by quantifying the degree of lipid vesicle deformation at the critical coverage prior to rupture and supported lipid bilayer formation. In a broader context, the presented nanofabrication approach constitutes a generic route for multimodal nanoplasmonic optical sensing.
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spelling pubmed-96204062022-11-01 Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution Nugroho, Ferry Anggoro Ardy Świtlik, Dominika Armanious, Antonius O’Reilly, Padraic Darmadi, Iwan Nilsson, Sara Zhdanov, Vladimir P. Höök, Fredrik Antosiewicz, Tomasz J. Langhammer, Christoph ACS Nano [Image: see text] Time-resolved measurements of changes in the size and shape of nanobiological objects and layers are crucial to understand their properties and optimize their performance. Optical sensing is particularly attractive with high throughput and sensitivity, and label-free operation. However, most state-of-the-art solutions require intricate modeling or multiparameter measurements to disentangle conformational or thickness changes of biomolecular layers from complex interfacial refractive index variations. Here, we present a dual-band nanoplasmonic ruler comprising mixed arrays of plasmonic nanoparticles with spectrally separated resonance peaks. As electrodynamic simulations and model experiments show, the ruler enables real-time simultaneous measurements of thickness and refractive index variations in uniform and heterogeneous layers with sub-nanometer resolution. Additionally, nanostructure shape changes can be tracked, as demonstrated by quantifying the degree of lipid vesicle deformation at the critical coverage prior to rupture and supported lipid bilayer formation. In a broader context, the presented nanofabrication approach constitutes a generic route for multimodal nanoplasmonic optical sensing. American Chemical Society 2022-09-09 2022-10-25 /pmc/articles/PMC9620406/ /pubmed/36083800 http://dx.doi.org/10.1021/acsnano.2c04948 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Nugroho, Ferry Anggoro Ardy
Świtlik, Dominika
Armanious, Antonius
O’Reilly, Padraic
Darmadi, Iwan
Nilsson, Sara
Zhdanov, Vladimir P.
Höök, Fredrik
Antosiewicz, Tomasz J.
Langhammer, Christoph
Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title_full Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title_fullStr Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title_full_unstemmed Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title_short Time-Resolved Thickness and Shape-Change Quantification using a Dual-Band Nanoplasmonic Ruler with Sub-Nanometer Resolution
title_sort time-resolved thickness and shape-change quantification using a dual-band nanoplasmonic ruler with sub-nanometer resolution
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9620406/
https://www.ncbi.nlm.nih.gov/pubmed/36083800
http://dx.doi.org/10.1021/acsnano.2c04948
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