4.8 Article

Single Molecule Surface Enhanced Raman Scattering in a Single Gold Nanoparticle-Driven Thermoplasmonic Tweezer

Journal

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
Volume 12, Issue 49, Pages 11910-11918

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.1c03450

Keywords

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Funding

  1. Air Force Research Laboratory grant [FA2386-18-1-4118 R D18IOA118]
  2. DST Energy Science grant [SR/NM/TP-13/2016]
  3. Swarnajayanti fellowship grant [DST/SJF/PSA02/2017-18]

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This study demonstrates a method for detecting single molecule SERS signatures in reversible assemblies of trapped plasmonic nanoparticles using a single laser excitation, highlighting the critical parameters provided by the thermoplasmonic tweezer for this sensitivity. Additionally, the utility of the low power tweezer platform, including trapping a single gold nanoparticle and assembly of nanoparticles, is shown.
Surface enhanced Raman scattering (SERS) is optically sensitive and chemically specific to detect single-molecule spectroscopic signatures. Facilitating this capability in optically trapped nanoparticles at low laser power remains a significant challenge. In this letter, we show single molecule SERS signatures in reversible assemblies of trapped plasmonic nanoparticles using a single laser excitation (633 nm). Importantly, this trap is facilitated by the thermoplasmonic field of a single gold nanoparticle dropcasted on a glass surface. We employ the bianalyte SERS technique to ascertain the single molecule statistical signatures and identify the critical parameters of the thermoplasmonic tweezer that provide this sensitivity. Furthermore, we show the utility of this low power (approximate to 0.1 mW/mu m(2)) tweezer platform to trap a single gold nanoparticle and transport assembly of nanoparticles. Given that our configuration is based on a dropcasted gold nanoparticle, we envisage its utility to create reconfigurable plasmonic metafluids in physiological and catalytic environments and to be potentially adapted as an in vivo plasmonic tweezer.

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