Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Zhe Liu
  • Zunhao Wang
  • Jannik Guckel
  • Ziba Akbarian
  • Tim j. Seifert
  • Daesung Park
  • Uta Schlickum
  • Rainer Stosch
  • Markus Etzkorn

Externe Organisationen

  • Physikalisch-Technische Bundesanstalt (PTB)
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Aufsatznummer2310955
FachzeitschriftSMALL
Jahrgang20
Ausgabenummer36
PublikationsstatusVeröffentlicht - 5 Sept. 2024

Abstract

DNA origami is a flexible platform for the precise organization of nano-objects, enabling numerous applications from biomedicine to nano-photonics. Its huge potential stems from its high flexibility that allows customized structures to meet specific requirements. The ability to generate diverse final structures from a common base by folding significantly enhances design variety and is regularly occurring in liquid. This study describes a novel approach that combines top-down lithography with bottom-up DNA origami techniques to control folding of the DNA origami with the adsorption on pre-patterned surfaces. Using this approach, tunable plasmonic dimer nano-arrays are fabricated on a silicon surface. This involves employing electron beam lithography to create adsorption sites on the surface and utilizing self-organized adsorption of DNA origami functionalized with two gold nanoparticles (AuNPs). The desired folding of the DNA origami helices can be controlled by the size and shape of the adsorption sites. This approach can for example be used to tune the center-to-center distance of the AuNPs dimers on the origami template. To demonstrate this technique's efficiency, the Raman signal of dye molecules (carboxy tetramethylrhodamine, TAMRA) coated on the AuNPs surface are investigated. These findings highlight the potential of tunable DNA origami-based plasmonic nanostructures for many applications.

ASJC Scopus Sachgebiete

Zitieren

Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding. / Liu, Zhe; Wang, Zunhao; Guckel, Jannik et al.
in: SMALL, Jahrgang 20, Nr. 36, 2310955, 05.09.2024.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Liu, Z, Wang, Z, Guckel, J, Akbarian, Z, Seifert, TJ, Park, D, Schlickum, U, Stosch, R & Etzkorn, M 2024, 'Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding', SMALL, Jg. 20, Nr. 36, 2310955. https://doi.org/10.1002/smll.202310955
Liu, Z., Wang, Z., Guckel, J., Akbarian, Z., Seifert, T. J., Park, D., Schlickum, U., Stosch, R., & Etzkorn, M. (2024). Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding. SMALL, 20(36), Artikel 2310955. https://doi.org/10.1002/smll.202310955
Liu Z, Wang Z, Guckel J, Akbarian Z, Seifert TJ, Park D et al. Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding. SMALL. 2024 Sep 5;20(36):2310955. doi: 10.1002/smll.202310955
Liu, Zhe ; Wang, Zunhao ; Guckel, Jannik et al. / Controlling Nanoparticle Distance by On‐Surface DNA‐Origami Folding. in: SMALL. 2024 ; Jahrgang 20, Nr. 36.
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AU - Liu, Zhe

AU - Wang, Zunhao

AU - Guckel, Jannik

AU - Akbarian, Ziba

AU - Seifert, Tim j.

AU - Park, Daesung

AU - Schlickum, Uta

AU - Stosch, Rainer

AU - Etzkorn, Markus

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Y1 - 2024/9/5

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