Considering the technological difficulties in the existing approaches to form nanoscale gaps, a convenient method to fabricate three-dimensional (3D) sub-10 nm Ag/SiNx gap arrays has been demonstrated in this study, controlled by a combination of stress-induced nanocracking of a SiNx nanobridge and Ag nanofilm deposition. This scalable 3D plasmonic nanogap is specially suspended above a substrate, having a tunable nanogap width and large height-to-width ratio to form a nanocavity underneath. As a surface-enhanced Raman scattering (SERS) substrate, the 3D Ag/SiNx nanogap shows a large Raman enhancement factor of similar to 10(8) and extremely high sensitivity for the detection of Rhodamine 6G (R6G) molecules, even down to 10(-16) M, indicati...
We propose and demonstrate a new SERS substrate architecture that couples a dense three-dimensional ...
The past two decades have witnessed the explosion of activities in the field of surface enhanced Ram...
ABSTRACT: Pairs of metal nanoparticles with a sub-10 nm gap are an efficient way to achieve extreme ...
Nanoscale gaps in noble metal films can produce intense electromagnetic enhancement. When Raman-acti...
Metallic nanogaps (MNGs) are fundamental components of nanoscale photonic and electronic devices. Ho...
Developing a sensor that identifies and quantifies trace amounts of analyte molecules is crucially i...
Nanometric gaps in noble metals can harness surface plasmons, collective excitations of the conducti...
The nanogap is possibly the single most important physical entity in surface-enhanced Raman scatteri...
This paper reports a highly sensitive and selective surface-enhanced Raman spectroscopy (SERS) sensi...
The nanogap is possibly the single most important physical entity in surface-enhanced Raman scatteri...
Vertically coupled plasmonic structures have been widely used in optical applications due to its enh...
The Raman signal of adsorbed molecules can be significantly enhanced by utilizing metallic structure...
Effective surface enhancement of Raman scattering (SERS) requires strong near-field enhancement as w...
The confinement of light into nanometer-sized metallic nanogaps can lead to an extremely high field ...
To achieve a reliable formation of a surface-enhanced Raman scattering (SERS) sensor with evenly dis...
We propose and demonstrate a new SERS substrate architecture that couples a dense three-dimensional ...
The past two decades have witnessed the explosion of activities in the field of surface enhanced Ram...
ABSTRACT: Pairs of metal nanoparticles with a sub-10 nm gap are an efficient way to achieve extreme ...
Nanoscale gaps in noble metal films can produce intense electromagnetic enhancement. When Raman-acti...
Metallic nanogaps (MNGs) are fundamental components of nanoscale photonic and electronic devices. Ho...
Developing a sensor that identifies and quantifies trace amounts of analyte molecules is crucially i...
Nanometric gaps in noble metals can harness surface plasmons, collective excitations of the conducti...
The nanogap is possibly the single most important physical entity in surface-enhanced Raman scatteri...
This paper reports a highly sensitive and selective surface-enhanced Raman spectroscopy (SERS) sensi...
The nanogap is possibly the single most important physical entity in surface-enhanced Raman scatteri...
Vertically coupled plasmonic structures have been widely used in optical applications due to its enh...
The Raman signal of adsorbed molecules can be significantly enhanced by utilizing metallic structure...
Effective surface enhancement of Raman scattering (SERS) requires strong near-field enhancement as w...
The confinement of light into nanometer-sized metallic nanogaps can lead to an extremely high field ...
To achieve a reliable formation of a surface-enhanced Raman scattering (SERS) sensor with evenly dis...
We propose and demonstrate a new SERS substrate architecture that couples a dense three-dimensional ...
The past two decades have witnessed the explosion of activities in the field of surface enhanced Ram...
ABSTRACT: Pairs of metal nanoparticles with a sub-10 nm gap are an efficient way to achieve extreme ...