Smaller Gold Nanoparticles Release DNA More Efficiently During fs Laser Pulsed Optical Heating

Author:

Hastman David A.1ORCID,Oh Eunkeu2ORCID,Melinger Joseph S.3ORCID,Green Christopher M.1ORCID,Thielemann Aaron J. P.4,Medintz Igor L.1ORCID,Díaz Sebastián A.1ORCID

Affiliation:

1. Center for Bio/Molecular Science and Engineering U.S. Naval Research Laboratory Code 6900 Washington DC 20375 USA

2. Optical Sciences Division Code 5600, U.S. Naval Research Laboratory Washington DC 20375 USA

3. Electronics Science and Technology Division Code 6800, U.S. Naval Research Laboratory Washington DC 20375 USA

4. Department of Navy‐US Naval Research Laboratory Historically Black Colleges and Universities/Minority Institutions Internship Program Washington, DC 20002 USA

Abstract

AbstractThis work investigates the effect of plasmonic gold nanoparticle (AuNP) size on the rate of thermal release of single‐stranded oligonucleotides under femtosecond (fs)‐pulsed laser irradiation sources. Contrary to the theoretical predictions that larger AuNPs (50–60 nm diameter) would produce the most solution heating and fastest DNA release, it is found that smaller AuNP diameters (25 nm) lead to faster dsDNA denaturation rates. Controlling for the pulse energy fluence, AuNP concentration, DNA loading density, and the distance from the AuNP surface finds the same result. These results imply that the solution temperature increases around the AuNP during fs laser pulse optical heating may not be the only significant influence on dsDNA denaturation, suggesting that direct energy transfer from the AuNP to the DNA (phonon–phonon coupling), which is increased as AuNPs decrease in size, may play a significant role.

Funder

U.S. Naval Research Laboratory

Office of Naval Research

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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