Literature DB >> 33834769

Graphene-on-Glass Preparation and Cleaning Methods Characterized by Single-Molecule DNA Origami Fluorescent Probes and Raman Spectroscopy.

Stefan Krause1, Evelyn Ploetz1, Johann Bohlen1, Patrick Schüler1, Renukka Yaadav1, Florian Selbach1, Florian Steiner1, Izabela Kamińska2, Philip Tinnefeld1.   

Abstract

Graphene exhibits outstanding fluorescence quenching properties that can become useful for biophysics and biosensing applications, but it remains challenging to harness these advantages due to the complex transfer procedure of chemical vapor deposition-grown graphene to glass coverslips and the low yield of usable samples. Here, we screen 10 graphene-on-glass preparation methods and present an optimized protocol. To obtain the required quality for single-molecule and super-resolution imaging on graphene, we introduce a graphene screening method that avoids consuming the investigated sample. We apply DNA origami nanostructures to place fluorescent probes at a defined distance on top of graphene-on-glass coverslips. Subsequent fluorescence lifetime imaging directly reports on the graphene quality, as deviations from the expected fluorescence lifetime indicate imperfections. We compare the DNA origami probes with conventional techniques for graphene characterization, including light microscopy, atomic force microscopy, and Raman spectroscopy. For the latter, we observe a discrepancy between the graphene quality implied by Raman spectra in comparison to the quality probed by fluorescence lifetime quenching measured at the same position. We attribute this discrepancy to the difference in the effective area that is probed by Raman spectroscopy and fluorescence quenching. Moreover, we demonstrate the applicability of already screened and positively evaluated graphene for studying single-molecule conformational dynamics on a second DNA origami structure. Our results constitute the basis for graphene-based biophysics and super-resolution microscopy.

Entities:  

Keywords:  DNA origami; Raman spectroscopy; fluorescence lifetime imaging microscopy; fluorescence quenching; graphene; single-molecule spectroscopy

Year:  2021        PMID: 33834769     DOI: 10.1021/acsnano.0c08383

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Understanding Förster Resonance Energy Transfer in the Sheet Regime with DNA Brick-Based Dye Networks.

Authors:  Divita Mathur; Anirban Samanta; Mario G Ancona; Sebastián A Díaz; Youngchan Kim; Joseph S Melinger; Ellen R Goldman; John Paul Sadowski; Luvena L Ong; Peng Yin; Igor L Medintz
Journal:  ACS Nano       Date:  2021-10-05       Impact factor: 15.881

  1 in total

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