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Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip

[Image: see text] Optical fibers equipped with plasmonic flow sensors at their tips are fabricated and investigated as photothermomechanical nanopumps for the active transport of target analytes to the sensor surface. The nanopumps are prepared using a bottom-up strategy: i.e., by sequentially stack...

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Autores principales: Polley, Nabarun, Sardar, Samim, Werner, Peter, Gersonde, Ingo, Kanehira, Yuya, Bald, Ilko, Repp, Daniel, Pertsch, Thomas, Pacholski, Claudia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9878711/
https://www.ncbi.nlm.nih.gov/pubmed/36414479
http://dx.doi.org/10.1021/acsnano.2c09938
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author Polley, Nabarun
Sardar, Samim
Werner, Peter
Gersonde, Ingo
Kanehira, Yuya
Bald, Ilko
Repp, Daniel
Pertsch, Thomas
Pacholski, Claudia
author_facet Polley, Nabarun
Sardar, Samim
Werner, Peter
Gersonde, Ingo
Kanehira, Yuya
Bald, Ilko
Repp, Daniel
Pertsch, Thomas
Pacholski, Claudia
author_sort Polley, Nabarun
collection PubMed
description [Image: see text] Optical fibers equipped with plasmonic flow sensors at their tips are fabricated and investigated as photothermomechanical nanopumps for the active transport of target analytes to the sensor surface. The nanopumps are prepared using a bottom-up strategy: i.e., by sequentially stacking a monolayer of a thermoresponsive polymer and a plasmonic nanohole array on an optical fiber tip. The temperature-dependent collapse and swelling of the polymer is used to create a flow-through pumping mechanism. The heat required for pumping is generated by exploiting the photothermal effect in the plasmonic nanohole array upon irradiation with laser light (405 nm). Simultaneous detection of analytes by the plasmonic sensor is achieved by monitoring changes in its optical response at longer wavelengths (∼500–800 nm). Active mass transport by pumping through the holes of the plasmonic nanohole array is visualized by particle imaging velocimetry. Finally, the performance of the photothermomechanical nanopumps is investigated for two types of analytes, namely nanoscale objects (gold nanoparticles) and molecules (11-mercaptoundecanoic acid). In the presence of the pumping mechanism, a 4-fold increase in sensitivity was observed compared to the purely photothermal effect, demonstrating the potential of the presented photothermomechanical nanopumps for sensing applications.
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spelling pubmed-98787112023-01-27 Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip Polley, Nabarun Sardar, Samim Werner, Peter Gersonde, Ingo Kanehira, Yuya Bald, Ilko Repp, Daniel Pertsch, Thomas Pacholski, Claudia ACS Nano [Image: see text] Optical fibers equipped with plasmonic flow sensors at their tips are fabricated and investigated as photothermomechanical nanopumps for the active transport of target analytes to the sensor surface. The nanopumps are prepared using a bottom-up strategy: i.e., by sequentially stacking a monolayer of a thermoresponsive polymer and a plasmonic nanohole array on an optical fiber tip. The temperature-dependent collapse and swelling of the polymer is used to create a flow-through pumping mechanism. The heat required for pumping is generated by exploiting the photothermal effect in the plasmonic nanohole array upon irradiation with laser light (405 nm). Simultaneous detection of analytes by the plasmonic sensor is achieved by monitoring changes in its optical response at longer wavelengths (∼500–800 nm). Active mass transport by pumping through the holes of the plasmonic nanohole array is visualized by particle imaging velocimetry. Finally, the performance of the photothermomechanical nanopumps is investigated for two types of analytes, namely nanoscale objects (gold nanoparticles) and molecules (11-mercaptoundecanoic acid). In the presence of the pumping mechanism, a 4-fold increase in sensitivity was observed compared to the purely photothermal effect, demonstrating the potential of the presented photothermomechanical nanopumps for sensing applications. American Chemical Society 2022-11-22 /pmc/articles/PMC9878711/ /pubmed/36414479 http://dx.doi.org/10.1021/acsnano.2c09938 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Polley, Nabarun
Sardar, Samim
Werner, Peter
Gersonde, Ingo
Kanehira, Yuya
Bald, Ilko
Repp, Daniel
Pertsch, Thomas
Pacholski, Claudia
Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title_full Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title_fullStr Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title_full_unstemmed Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title_short Photothermomechanical Nanopump: A Flow-Through Plasmonic Sensor at the Fiber Tip
title_sort photothermomechanical nanopump: a flow-through plasmonic sensor at the fiber tip
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9878711/
https://www.ncbi.nlm.nih.gov/pubmed/36414479
http://dx.doi.org/10.1021/acsnano.2c09938
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