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High-Throughput Screening of Optical Properties of Glass-Supported Plasmonic Nanoparticles Fabricated by Polymer Pen Lithography
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    C: Spectroscopy and Dynamics of Nano, Hybrid, and Low-Dimensional Materials

    High-Throughput Screening of Optical Properties of Glass-Supported Plasmonic Nanoparticles Fabricated by Polymer Pen Lithography
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    The Journal of Physical Chemistry C

    Cite this: J. Phys. Chem. C 2023, 127, 39, 19607–19619
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    https://doi.org/10.1021/acs.jpcc.3c04521
    Published September 26, 2023
    Copyright © 2023 American Chemical Society

    Abstract

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    Optical applications of plasmonic nanoparticles depend critically on particle properties such as relative proximity, composition, crystallinity, and shape. The most common nanoparticle fabrication techniques, colloidal synthesis and electron beam lithography, allow the tailoring of some of these parameters, yet do not provide control over all of them. Scanning probe block copolymer lithography (SPBCL), a technique that grows nanoparticles on substrates from precisely deposited precursor droplets, merges the advantages of colloidal synthesis and electron beam lithography, and offers high throughput, precise particle positioning, and composition control. A few challenges with the SBCL method remain: fabrication of optically relevant particle sizes on optically transparent supports, and detailed correlation of their optical and morphological properties. Here, we adapt SPBCL to fabricate large arrays of gold nanoparticles on glass supports. The resulting nanoparticles have varying shapes, and at ∼100 nm in diameter, they support strong plasmon resonances. In order to fully exploit the high-throughput fabrication method, we designed an automated dark-field microscope and correlated the optical behavior to the mechanical properties as determined through electron and pump–probe microscopy. We find that the SPBCL-synthesized nanoparticles are highly crystalline, supporting both plasmon oscillations and mechanical vibrations with lifetimes comparable to colloidal nanospheres. Our work highlights SPBCL as a promising and versatile synthesis approach for plasmonic nanoparticles, leading the way toward extensive screening capabilities for optical properties and hence improved potential applications.

    Copyright © 2023 American Chemical Society

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    Supporting Information

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    The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acs.jpcc.3c04521.

    • AuNP shape distribution; AuNP size distribution; diameter dependence of the AuNP shape; discussion of side products; size and shape dependence of plasmon resonance energies; calculated electric fields from DDA simulations; TEM image of AuNP oxide layer; particle thickness correction; further analysis of plasmon damping; volume dependence of the plasmon resonance and damping; data analysis procedure of transient transmission traces; example traces and respective FFTs; and shape dependence of the acoustic Q factor (PDF)

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    This article is cited by 1 publications.

    1. Mohamed J. Saadh, Mohammed Ahmed Mustafa, Ghadir Kamil Ghadir, Mandeep Kaur, Harpreet Kaur, Faraj Mohammed, Israa Abed Jawad, Mohammad Mahtab Alam, Zahraa F. Hassan, Imad Jasim Mohammed, Ali Turki Shnishil, Munther Kadhim Abosaoda. Porphyrin-based nanoarchitectures in sensing: Characterization, and applications in detecting gases, biomolecules, and environmental contaminants. Inorganic Chemistry Communications 2024, 163 , 112352. https://doi.org/10.1016/j.inoche.2024.112352

    The Journal of Physical Chemistry C

    Cite this: J. Phys. Chem. C 2023, 127, 39, 19607–19619
    Click to copy citationCitation copied!
    https://doi.org/10.1021/acs.jpcc.3c04521
    Published September 26, 2023
    Copyright © 2023 American Chemical Society

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