Three Generations of Surface Nanocomposites Based on Hexagonally Ordered Gold Nanoparticle Layers and Their Application for Surface-Enhanced Raman Spectroscopy

Author:

Zangana Shireen12,Lednický Tomáš3ORCID,Bonyár Attila12ORCID

Affiliation:

1. Department of Electronics Technology, Faculty of Electrical Engineering and Informatics, Budapest University of Technology and Economics, 1111 Budapest, Hungary

2. Wigner Research Centre for Physics, 1525 Budapest, Hungary

3. CEITEC—Central European Institute of Technology, Brno University of Technology, 61200 Brno, Czech Republic

Abstract

The fabrication technology of surface nanocomposites based on hexagonally ordered gold nanoparticle (AuNP) layers (quasi-arrays) and their possible application as surface-enhanced Raman spectroscopy (SERS) substrates are presented in this paper. The nanoparticle layers are prepared using a nanotextured template formed by porous anodic alumina (PAA) and combined with gold thin-film deposition and subsequent solid-state dewetting. Three types of hexagonal arrangements were prepared with different D/D0 values (where D is the interparticle gap, and D0 is the diameter of the ellipsoidal particles) on a large surface area (~cm2 range), namely, 0.65 ± 0.12, 0.33 ± 0.10 and 0.21 ± 0.09. The transfer of the particle arrangements to transparent substrates was optimized through three generations, and the advantages and disadvantages of each transfer technology are discussed in detail. Such densely packed nanoparticle arrangements with high hot-spot density and tunable interparticle gaps are very beneficial for SERS applications, as demonstrated with two practical examples. The substrate-based enhancement factor of the nanocomposites was determined experimentally using a DNA monolayer and was found to be between 4 × 104 and 2 × 106 for the different particle arrangements. We also determined the sensing characteristics of a small dye molecule, rhodamine 6G (R6G). By optimizing the experimental conditions (e.g., optimizing the laser power and the refractive index of the measurement medium with an ethylene-glycol/water mixture), concentrations as low as 10−16 M could be detected at 633 nm excitation.

Funder

Nanoplasmonic Laser Fusion Research Laboratory project

National Research and Innovation Office

Eötvös Lóránd Research Network (ELKH), Hungary

National Research, Development, and Innovation Fund of Hungary

European Union and European Social Fund

Hungarian Academy of Engineering and the “MICHELBERGER MESTERDÍJ” Scholarship

CzechNanoLab Research Infrastructure

Ministry of the Interior of the Czech Republic

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Analytical Chemistry

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