The confinement of light into nanometer-sized metallic nanogaps can lead to an extremely high field enhancement, resulting in dramatically enhanced absorption, emission, and surface-enhanced Raman scattering (SERS) of molecules embedded in nanogaps. However, low-cost, high-throughput, and reliable fabrication of ultra-high-dense nanogap arrays with precise control of the gap size still remains a challenge. Here, by combining colloidal lithography and atomic layer deposition technique, a reproducible method for fabricating ultra-high-dense arrays of hexagonal close-packed annular nanogaps over large areas is demonstrated. The annular nanogap arrays with a minimum diameter smaller than 100 nm and sub-1 nm gap width have been produced, showing excellent SERS performance with a typical enhancement factor up to 3.1 × 10 and a detection limit of 10 M. Moreover, it can also work as a high-quality field enhancement substrate for studying two-dimensional materials, such as MoSe. Our method provides an attractive approach to produce controllable nanogaps for enhanced light-matter interaction at the nanoscale.
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http://dx.doi.org/10.1021/acsami.8b04810 | DOI Listing |
ACS Cent Sci
November 2024
Department of Chemistry, University of Florida, Gainesville, Florida 32611, United States.
Confinement of molecules occurs ubiquitously in nature and fundamentally affects their properties and reactions. Developing synthetic confinement systems capable of precise modulation of chemical reactions is critical to understanding the underlying mechanisms and to promoting numerous applications including biosensing. However, current nanoconfinement systems often require sophisticated fabrication and operation.
View Article and Find Full Text PDFNanophotonics
February 2024
Optoelectronics Research Centre, University of Southampton, Southampton, England.
Compact power splitters are essential components in integrated optics. While 1 × 2 power splitters with uniform splitting are widely used, a 1 × splitter with arbitrary number of ports and arbitrary splitting ratio is yet to be demonstrated. In this work we address this problem.
View Article and Find Full Text PDFSpectrochim Acta A Mol Biomol Spectrosc
February 2025
School of Physics and Technology, Nantong University, No. 9, Seyuan Road, Nantong, Jiangsu 226019, PR China. Electronic address:
The development and design of a novel, uniform and highly active local electromagnetic field enhanced structure is crucial for expanding Surface-enhanced Raman Scattering (SERS) applications. In this study, we developed Ag ring-coupled nanoarrays (Ag RCNAs) with controllable nanogaps using a substrate rotary evaporation coating technique with self-assembled polystyrene (PS) microspheres as templates. This straightforward and cost-effective method efficiently prepares plasma-coupled nanoarrays.
View Article and Find Full Text PDFNano Lett
September 2024
School of Materials, Sun Yat-Sen University, Shenzhen 518107, China.
Gap surface plasmon (GSP) modes enhance graphene photodetectors (GPDs)' performance by confining the incident light within nanogaps, giving rise to strong light absorption. Here, we propose an asymmetric plasmonic nanostructure array on planar graphene comprising stripe- and triangle-shaped sharp tip arrays. Upon light excitation, the noncentrosymmetric metallic nanostructures show strong light-matter interactions with localized field close to the surface of tips, causing an asymmetric electric field.
View Article and Find Full Text PDFACS Nano
August 2024
Research Institute for Electronic Science, Hokkaido University, Sapporo 001-0021, Japan.
Surface-enhanced Raman scattering (SERS) is an attractive technique in molecular detection with high sensitivity and label-free characteristics. However, its use in protein detection is limited by the large volume of proteins, hindering its approach to the narrow spaces of hotspots. In this study, we fabricated a Au nanoTriangle plate Array on Gel (AuTAG) as an SERS substrate by attaching a Au nanoTriangle plate (AuNT) arrangement on a thermoresponsive hydrogel surface.
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