4.4 Article

Role of the Polymeric Matrix and Surface Affinity During Gold Nanoparticles Patterning by Multi-Photon Photo-Reduction

Journal

IEEE TRANSACTIONS ON NANOTECHNOLOGY
Volume 21, Issue -, Pages 442-448

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TNANO.2022.3191782

Keywords

Polymers; Gold; Substrates; Economic indicators; Gratings; Nanoparticles; Power lasers; 3D laser printing; gold nanoparticles; nanopatterning; multi-photon photo-reduction; polyvinyl alcohol

Funding

  1. MUR [CUP: H26J20001560005]
  2. CNR through Project Materials and Processes BEYOND [PONa3-00362]

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This study successfully demonstrates the patterning of gold nanoparticles using Multi-Photon Direct Laser Writing in wet polymeric matrices. The role of the polymeric matrix, the interaction between nanoparticles and the surrounding materials, as well as the influence of temperature on particle distribution and size are thoroughly analyzed. A protocol for patterning gold nanoparticles without the use of polymer is also illustrated.
Gold nanoparticles (GNPs) can be patterned on specific positions and substrates by Multi-Photon Direct Laser Writing (MP-DLW) in wet polymeric matrices doped with tetrachloroauric acid (HAuCl4) as gold precursor. The Hamaker constants describing the GNP-GNP interaction and the interaction between the GNPs and the surrounding materials is described, defining the role of the polymeric matrix; thus, its limits and the advantages are thoroughly analysed. The Multi-Photon Photo-Reduction (MPPR) process, leading to the GNPs creation, triggers a local temperature rising, which can ablate the polymer and influences the particle distribution, size and density. The GNPs polydispersity also depends on the water content in the film, variable because of the vaporization. A protocol to perform MP-DLW of GNPs, without the use of the polymer is illustrated: by treating the surface with a surfactant, it is possible to make the particles stick to the substrate, control their size and reduce the diffusive and convective effects generated by the MPPR.

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