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Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis

In single molecule fluorescence studies, background emission from labeled substrates often restricts their concentrations to non-physiological nanomolar values. One approach to address this challenge is the use of zero-mode waveguides (ZMWs), nanoscale holes in a thin metal film that physically and...

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Autores principales: Jamiolkowski, Ryan M., Chen, Kevin Y., Fiorenza, Shane A., Tate, Alyssa M., Pfeil, Shawn H., Goldman, Yale E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6786550/
https://www.ncbi.nlm.nih.gov/pubmed/31600217
http://dx.doi.org/10.1371/journal.pone.0222964
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author Jamiolkowski, Ryan M.
Chen, Kevin Y.
Fiorenza, Shane A.
Tate, Alyssa M.
Pfeil, Shawn H.
Goldman, Yale E.
author_facet Jamiolkowski, Ryan M.
Chen, Kevin Y.
Fiorenza, Shane A.
Tate, Alyssa M.
Pfeil, Shawn H.
Goldman, Yale E.
author_sort Jamiolkowski, Ryan M.
collection PubMed
description In single molecule fluorescence studies, background emission from labeled substrates often restricts their concentrations to non-physiological nanomolar values. One approach to address this challenge is the use of zero-mode waveguides (ZMWs), nanoscale holes in a thin metal film that physically and optically confine the observation volume allowing much higher concentrations of fluorescent substrates. Standard fabrication of ZMWs utilizes slow and costly E-beam nano-lithography. Herein, ZMWs are made using a self-assembled mask of polystyrene microspheres, enabling fabrication of thousands of ZMWs in parallel without sophisticated equipment. Polystyrene 1 μm dia. microbeads self-assemble on a glass slide into a hexagonal array, forming a mask for the deposition of metallic posts in the inter-bead interstices. The width of those interstices (and subsequent posts) is adjusted within 100–300 nm by partially fusing the beads at the polystyrene glass transition temperature. The beads are dissolved in toluene, aluminum or gold cladding is deposited around the posts, and those are dissolved, leaving behind an array ZMWs. Parameter optimization and the performance of the ZMWs are presented. By using colloidal self-assembly, typical laboratories can make use of sub-wavelength ZMW technology avoiding the availability and expense of sophisticated clean-room environments and equipment.
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spelling pubmed-67865502019-10-19 Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis Jamiolkowski, Ryan M. Chen, Kevin Y. Fiorenza, Shane A. Tate, Alyssa M. Pfeil, Shawn H. Goldman, Yale E. PLoS One Research Article In single molecule fluorescence studies, background emission from labeled substrates often restricts their concentrations to non-physiological nanomolar values. One approach to address this challenge is the use of zero-mode waveguides (ZMWs), nanoscale holes in a thin metal film that physically and optically confine the observation volume allowing much higher concentrations of fluorescent substrates. Standard fabrication of ZMWs utilizes slow and costly E-beam nano-lithography. Herein, ZMWs are made using a self-assembled mask of polystyrene microspheres, enabling fabrication of thousands of ZMWs in parallel without sophisticated equipment. Polystyrene 1 μm dia. microbeads self-assemble on a glass slide into a hexagonal array, forming a mask for the deposition of metallic posts in the inter-bead interstices. The width of those interstices (and subsequent posts) is adjusted within 100–300 nm by partially fusing the beads at the polystyrene glass transition temperature. The beads are dissolved in toluene, aluminum or gold cladding is deposited around the posts, and those are dissolved, leaving behind an array ZMWs. Parameter optimization and the performance of the ZMWs are presented. By using colloidal self-assembly, typical laboratories can make use of sub-wavelength ZMW technology avoiding the availability and expense of sophisticated clean-room environments and equipment. Public Library of Science 2019-10-10 /pmc/articles/PMC6786550/ /pubmed/31600217 http://dx.doi.org/10.1371/journal.pone.0222964 Text en © 2019 Jamiolkowski et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Jamiolkowski, Ryan M.
Chen, Kevin Y.
Fiorenza, Shane A.
Tate, Alyssa M.
Pfeil, Shawn H.
Goldman, Yale E.
Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title_full Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title_fullStr Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title_full_unstemmed Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title_short Nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
title_sort nanoaperture fabrication via colloidal lithography for single molecule fluorescence analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6786550/
https://www.ncbi.nlm.nih.gov/pubmed/31600217
http://dx.doi.org/10.1371/journal.pone.0222964
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