We report pH sensing for biological applications based on surface enhanced Raman scattering (SERS) from silver nanoparticles functionalized with 2-aminothiophenol (2-aminobenzenethiol, 2-ABT). pH-dependent SERS spectra of the attached 2-ABT molecules enable one to sense the pH over the range of 3.0-8.0. We have performed the first demonstration of SERS detection in living cells kept in different pH buffer solutions and show that the pH sensitivity is retained in that case. Thus, the nanoparticles can be used as probes delivering spatially localized chemical information from biological environments and provide a new way to monitor chemical changes at cellular level
Conventional research on surface-enhanced Raman scattering (SERS)-based pH sensors often depends on ...
Coated gold nanoparticles bearing a pH-sensitive molecule serve as nanoscale optical sensors for non...
A modification to the traditional synthesis of reduced silver metal nanoparticles with hydroxylamine...
Talley CE, Jusinski L, Hollars CW, Lane SM, Huser T. Intracellular pH sensors based on surface-enhan...
As pH value almost affects the function of cells and organisms in all aspects, in biology, biochemic...
The merging of the molecular specificity of Raman spectroscopy with the extraordinary optical proper...
Sensors based upon surface-enhanced Raman spectroscopy (SERS) are attractive because they have narro...
Local microenvironment pH sensing is one of the key parameters for the understanding of many biologi...
The extraordinary optical properties of gold nanoparticles (AuNPs), together with their rewarding ch...
Intracellular pH is one of the key factors for understanding various biological processes in biologi...
In this paper, we describe the synthesis and characterization of 2,5-dimercaptobenzoic acid as a nov...
The development of pH sensing tools for in vitro cell cultures is imperative to maximize the pathoph...
Visualization of intracellular pH (i-pH) using surface-enhanced Raman spectroscopy (SERS) plays an i...
Silver nanoparticles can be used to provide excellent surface enhanced resonance Raman scattering. C...
Surface-enhanced Raman scattering is a powerful tool for the investigation of biological samples. Fo...
Conventional research on surface-enhanced Raman scattering (SERS)-based pH sensors often depends on ...
Coated gold nanoparticles bearing a pH-sensitive molecule serve as nanoscale optical sensors for non...
A modification to the traditional synthesis of reduced silver metal nanoparticles with hydroxylamine...
Talley CE, Jusinski L, Hollars CW, Lane SM, Huser T. Intracellular pH sensors based on surface-enhan...
As pH value almost affects the function of cells and organisms in all aspects, in biology, biochemic...
The merging of the molecular specificity of Raman spectroscopy with the extraordinary optical proper...
Sensors based upon surface-enhanced Raman spectroscopy (SERS) are attractive because they have narro...
Local microenvironment pH sensing is one of the key parameters for the understanding of many biologi...
The extraordinary optical properties of gold nanoparticles (AuNPs), together with their rewarding ch...
Intracellular pH is one of the key factors for understanding various biological processes in biologi...
In this paper, we describe the synthesis and characterization of 2,5-dimercaptobenzoic acid as a nov...
The development of pH sensing tools for in vitro cell cultures is imperative to maximize the pathoph...
Visualization of intracellular pH (i-pH) using surface-enhanced Raman spectroscopy (SERS) plays an i...
Silver nanoparticles can be used to provide excellent surface enhanced resonance Raman scattering. C...
Surface-enhanced Raman scattering is a powerful tool for the investigation of biological samples. Fo...
Conventional research on surface-enhanced Raman scattering (SERS)-based pH sensors often depends on ...
Coated gold nanoparticles bearing a pH-sensitive molecule serve as nanoscale optical sensors for non...
A modification to the traditional synthesis of reduced silver metal nanoparticles with hydroxylamine...