4.8 Article

Femtosecond Laser-Controlled Tip-to-Tip Assembly and Welding of Gold Nanorods

期刊

NANO LETTERS
卷 15, 期 12, 页码 8282-8288

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.5b03844

关键词

Gold nanorod; femtosecond laser; nanoparticle assembly; dimer; welded nanoparticles

资金

  1. Spanish MINECO [MAT2012-38541, MAT2013-46101-R, MAT2014-59678-R, CTQ2012-37404-C02-01]
  2. Spanish MINECO
  3. Moncloa Campus of International Excellence (UCM-UPM)
  4. European Research Council, ERC [335078 COLOURATOMS]

向作者/读者索取更多资源

Directed assembly of gold nanorods through the use of dithiolated molecular linkers is one of the most efficient methodologies for the morphologically controlled tip-to-tip assembly of this type of anisotropic nanocrystals. However, in a direct analogy to molecular polymerization synthesis, this process is characterized by difficulties in chain-growth control over nanoparticle oligomers. In particular, it is nearly impossible to favor the formation of one type of oligomer, making the methodology hard to use for actual applications in nanoplasmonics. We propose here a lightcontrolled synthetic procedure that allows obtaining selected plasmonic oligomers in high yield and with reaction times in the scale of minutes by irradiation with low fluence near-infrared (NIR) femtosecond laser pulses. Selective inhibition of the formation of gold nanorod n-mers (trimers) with a longitudinal localized surface plasmon in resonance with a 800 nm Ti:sapphire laser, allowed efficient trapping of the (n 1)-mers (dirners) by hot spot mediated photothermal decomposition of the interparticle molecular linkers. Laser irradiation at higher energies produced near-field enhancement at the interparticle gaps, which is large enough to melt gold nanorod tips, offering a new pathway toward tip-to-tip welding of gold nanorod oligomers with a plasmonic response at the NIR. Thorough optical and electron microscopy characterization indicates that plasmonic oligomers can be selectively trapped and welded, which has been analyzed in terms of a model that predicts with reasonable accuracy the relative concentrations of the main plasmonic species.

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