Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Gold Tetrahedral Nanoframes with Mono‐Rim or Dual‐Rim Morphologies for Enhanced Near‐Field Focusing in SERS

View through CrossRef
AbstractThis study presents a synthesis method for Au tetrahedral nanoframes (Td NFs) through a rationally designed multiple‐step process, followed by an investigation of their distinctively ordered self‐assembly for enhanced performance in surface‐enhanced Raman spectroscopy (SERS). Two distinct Au Td NF building blocks are synthesized, exhibiting mono‐rim or dual‐rim morphologies. The mono‐rim structure lacks intra‐nanogaps, whereas the dual‐rim configuration features well‐defined intra‐nanogaps. The non‐centrosymmetric Td NFs self‐assemble into a distinctive antiparallel arrangement that alternates between the tip‐up and face‐up orientations of the Au Td NFs. This configuration results in the formation of both triply tip‐to‐tip and face‐to‐face nanogaps. The unique zigzag pattern exhibited strong electromagnetic field enhancement and extensive spatial hot zones, significantly amplifying near‐field focusing and, consequently, the SERS effect. The near‐field enhancement of Au Td NF assemblies is confirmed through finite element method simulations and experimentally validated by comparing bulk SERS measurements with those of Au octahedron NF assemblies, which tend to adopt a parallel face‐to‐tip alignment during assembly. Owing to the complex arrangement of multiple intra‐nanogaps between the internal rim‐to‐rim interfaces and the four exposed facets, dual‐rim Td NFs exhibited single‐particle SERS activity, a capability not observed in analogous Td NFs with single rims.
Title: Gold Tetrahedral Nanoframes with Mono‐Rim or Dual‐Rim Morphologies for Enhanced Near‐Field Focusing in SERS
Description:
AbstractThis study presents a synthesis method for Au tetrahedral nanoframes (Td NFs) through a rationally designed multiple‐step process, followed by an investigation of their distinctively ordered self‐assembly for enhanced performance in surface‐enhanced Raman spectroscopy (SERS).
Two distinct Au Td NF building blocks are synthesized, exhibiting mono‐rim or dual‐rim morphologies.
The mono‐rim structure lacks intra‐nanogaps, whereas the dual‐rim configuration features well‐defined intra‐nanogaps.
The non‐centrosymmetric Td NFs self‐assemble into a distinctive antiparallel arrangement that alternates between the tip‐up and face‐up orientations of the Au Td NFs.
This configuration results in the formation of both triply tip‐to‐tip and face‐to‐face nanogaps.
The unique zigzag pattern exhibited strong electromagnetic field enhancement and extensive spatial hot zones, significantly amplifying near‐field focusing and, consequently, the SERS effect.
The near‐field enhancement of Au Td NF assemblies is confirmed through finite element method simulations and experimentally validated by comparing bulk SERS measurements with those of Au octahedron NF assemblies, which tend to adopt a parallel face‐to‐tip alignment during assembly.
Owing to the complex arrangement of multiple intra‐nanogaps between the internal rim‐to‐rim interfaces and the four exposed facets, dual‐rim Td NFs exhibited single‐particle SERS activity, a capability not observed in analogous Td NFs with single rims.

Related Results

Fundamental Investigations into Single Molecule Surface Enhanced Raman Spectroscopy
Fundamental Investigations into Single Molecule Surface Enhanced Raman Spectroscopy
<p>After the first claim of single molecule (SM) detection by surface enhanced Raman spectroscopy (SERS) was published in 1997 and years of debate and maturing, SM-SERS can n...
Surface enhanced Raman scattering (SERS) based biomicrofluidics systems for trace protein analysis
Surface enhanced Raman scattering (SERS) based biomicrofluidics systems for trace protein analysis
In recent years, Surface Enhanced Raman Scattering (SERS) has been widely applied to many different areas, including chemical analysis, biomolecule detection, bioagent diagnostics,...
Surface-Enhanced Raman Spectroscopy Substrates: Plasmonic Metals to Graphene
Surface-Enhanced Raman Spectroscopy Substrates: Plasmonic Metals to Graphene
Surface-enhanced Raman spectroscopy (SERS), a marvel that uses surfaces to enhance conventional Raman signals, is proposed for a myriad of applications, such as diagnosis of diseas...
Applications of surface enhanced Raman scattering (SERS) spectroscopy for detection of nucleic acids
Applications of surface enhanced Raman scattering (SERS) spectroscopy for detection of nucleic acids
Abstract Nucleic acids (deoxyribonucleic acid – DNA and ribonucleic acid – RNA) are essential components of all living organisms, with DNA encoding genetic informati...
Applications of SERS Spectroscopy for Blood Analysis
Applications of SERS Spectroscopy for Blood Analysis
Over the last decade, there is a surge on researchers utilizing Surface Enhanced Raman Scattering (SERS) spectroscopy for blood analysis for various biomedical applications. This c...
Enhancement of Surface-Enhanced Raman Spectroscopy for Bacterial Characterization Using Functionalized Silver Nanoparticles
Enhancement of Surface-Enhanced Raman Spectroscopy for Bacterial Characterization Using Functionalized Silver Nanoparticles
Surface-enhanced Raman Spectroscopy (SERS) has gained considerable interest as an effective method for bacterial detection owing to its exceptional sensitivity and ability to ident...

Back to Top