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Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production

[Image: see text] Sensitive detection of low-abundance biomolecules is central for diagnostic applications. Semiconductor nanowires can be designed to enhance the fluorescence signal from surface-bound molecules, prospectively improving the limit of optical detection. However, to achieve the desired...

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Autores principales: Valderas-Gutiérrez, Julia, Davtyan, Rubina, Sivakumar, Sudhakar, Anttu, Nicklas, Li, Yuyu, Flatt, Patrick, Shin, Jae Yen, Prinz, Christelle N., Höök, Fredrik, Fioretos, Thoas, Magnusson, Martin H., Linke, Heiner
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9315950/
https://www.ncbi.nlm.nih.gov/pubmed/35909504
http://dx.doi.org/10.1021/acsanm.2c01372
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author Valderas-Gutiérrez, Julia
Davtyan, Rubina
Sivakumar, Sudhakar
Anttu, Nicklas
Li, Yuyu
Flatt, Patrick
Shin, Jae Yen
Prinz, Christelle N.
Höök, Fredrik
Fioretos, Thoas
Magnusson, Martin H.
Linke, Heiner
author_facet Valderas-Gutiérrez, Julia
Davtyan, Rubina
Sivakumar, Sudhakar
Anttu, Nicklas
Li, Yuyu
Flatt, Patrick
Shin, Jae Yen
Prinz, Christelle N.
Höök, Fredrik
Fioretos, Thoas
Magnusson, Martin H.
Linke, Heiner
author_sort Valderas-Gutiérrez, Julia
collection PubMed
description [Image: see text] Sensitive detection of low-abundance biomolecules is central for diagnostic applications. Semiconductor nanowires can be designed to enhance the fluorescence signal from surface-bound molecules, prospectively improving the limit of optical detection. However, to achieve the desired control of physical dimensions and material properties, one currently uses relatively expensive substrates and slow epitaxy techniques. An alternative approach is aerotaxy, a high-throughput and substrate-free production technique for high-quality semiconductor nanowires. Here, we compare the optical sensing performance of custom-grown aerotaxy-produced Ga(As)P nanowires vertically aligned on a polymer substrate to GaP nanowires batch-produced by epitaxy on GaP substrates. We find that signal enhancement by individual aerotaxy nanowires is comparable to that from epitaxy nanowires and present evidence of single-molecule detection. Platforms based on both types of nanowires show substantially higher normalized-to-blank signal intensity than planar glass surfaces, with the epitaxy platforms performing somewhat better, owing to a higher density of nanowires. With further optimization, aerotaxy nanowires thus offer a pathway to scalable, low-cost production of highly sensitive nanowire-based platforms for optical biosensing applications.
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spelling pubmed-93159502022-07-27 Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production Valderas-Gutiérrez, Julia Davtyan, Rubina Sivakumar, Sudhakar Anttu, Nicklas Li, Yuyu Flatt, Patrick Shin, Jae Yen Prinz, Christelle N. Höök, Fredrik Fioretos, Thoas Magnusson, Martin H. Linke, Heiner ACS Appl Nano Mater [Image: see text] Sensitive detection of low-abundance biomolecules is central for diagnostic applications. Semiconductor nanowires can be designed to enhance the fluorescence signal from surface-bound molecules, prospectively improving the limit of optical detection. However, to achieve the desired control of physical dimensions and material properties, one currently uses relatively expensive substrates and slow epitaxy techniques. An alternative approach is aerotaxy, a high-throughput and substrate-free production technique for high-quality semiconductor nanowires. Here, we compare the optical sensing performance of custom-grown aerotaxy-produced Ga(As)P nanowires vertically aligned on a polymer substrate to GaP nanowires batch-produced by epitaxy on GaP substrates. We find that signal enhancement by individual aerotaxy nanowires is comparable to that from epitaxy nanowires and present evidence of single-molecule detection. Platforms based on both types of nanowires show substantially higher normalized-to-blank signal intensity than planar glass surfaces, with the epitaxy platforms performing somewhat better, owing to a higher density of nanowires. With further optimization, aerotaxy nanowires thus offer a pathway to scalable, low-cost production of highly sensitive nanowire-based platforms for optical biosensing applications. American Chemical Society 2022-07-01 2022-07-22 /pmc/articles/PMC9315950/ /pubmed/35909504 http://dx.doi.org/10.1021/acsanm.2c01372 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 Valderas-Gutiérrez, Julia
Davtyan, Rubina
Sivakumar, Sudhakar
Anttu, Nicklas
Li, Yuyu
Flatt, Patrick
Shin, Jae Yen
Prinz, Christelle N.
Höök, Fredrik
Fioretos, Thoas
Magnusson, Martin H.
Linke, Heiner
Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title_full Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title_fullStr Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title_full_unstemmed Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title_short Enhanced Optical Biosensing by Aerotaxy Ga(As)P Nanowire Platforms Suitable for Scalable Production
title_sort enhanced optical biosensing by aerotaxy ga(as)p nanowire platforms suitable for scalable production
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9315950/
https://www.ncbi.nlm.nih.gov/pubmed/35909504
http://dx.doi.org/10.1021/acsanm.2c01372
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