A novel low-cost surface plasmon resonance (SPR) platform has been tested, for the first time, to monitor the interaction between a molecularly imprinted polymer (MIP) and a small molecule as the substrate. As a proof of principle, the considered MIP was specific for furfural (2-FAL, MW = 96.4), so that the possibility of using the new device for detection of 2-FAL in aqueous media was investigated. For the sake of comparison a sensor based on the same MIP specific for 2-FAL deposited on an SPR platform in a D-shaped plastic optical fiber (POF), which has been previously demonstrated to well perform for different analytes, has been considered too. The experimental results showed good performances of the novel platform for chemical sensing b...
Molecular imprinting is earning worldwide attention from researchers in the field of sensing and dia...
A novel optical platform has been used to monitor the interaction between a molecularly imprinted po...
We have used the same biomimetic receptor, a specific molecularly imprinted polymer (MIP), on two di...
A novel low-cost surface plasmon resonance (SPR) platform has been tested, for the first time, to mo...
A novel optical chemical sensing approach is presented and successfully tested in this work. The dev...
Optical chemosensors with surface plasmon resonance (SPR) transduction are widely employed, even in ...
A novel Molecularly Imprinted Polymer (MIP) able to bind perfluorinated compounds, combined with a s...
A novel Molecularly Imprinted Polymer (MIP) able to bind perfluorinated compounds, combined with a s...
A surface plasmon resonance (SPR) platform, based on a D-shaped plastic optical fiber (POF), combine...
For the detection of chemical agents in different environments, the combination of a D-shaped plasti...
For the detection of chemical agents in different environments, the combination of a D-shaped plasti...
A novel optical platform has been used to monitor the interaction between a molecularly imprinted po...
In this work a novel Molecularly Imprinted Polymer (MIP) able to bind PFAs (Perfluorinated Alkylated...
The possibility of developing a multichannel optical chemical sensor, based on molecularly imprinted...
In this work, we report the design, implementation and characterization of SPR sensors in a D-shaped...
Molecular imprinting is earning worldwide attention from researchers in the field of sensing and dia...
A novel optical platform has been used to monitor the interaction between a molecularly imprinted po...
We have used the same biomimetic receptor, a specific molecularly imprinted polymer (MIP), on two di...
A novel low-cost surface plasmon resonance (SPR) platform has been tested, for the first time, to mo...
A novel optical chemical sensing approach is presented and successfully tested in this work. The dev...
Optical chemosensors with surface plasmon resonance (SPR) transduction are widely employed, even in ...
A novel Molecularly Imprinted Polymer (MIP) able to bind perfluorinated compounds, combined with a s...
A novel Molecularly Imprinted Polymer (MIP) able to bind perfluorinated compounds, combined with a s...
A surface plasmon resonance (SPR) platform, based on a D-shaped plastic optical fiber (POF), combine...
For the detection of chemical agents in different environments, the combination of a D-shaped plasti...
For the detection of chemical agents in different environments, the combination of a D-shaped plasti...
A novel optical platform has been used to monitor the interaction between a molecularly imprinted po...
In this work a novel Molecularly Imprinted Polymer (MIP) able to bind PFAs (Perfluorinated Alkylated...
The possibility of developing a multichannel optical chemical sensor, based on molecularly imprinted...
In this work, we report the design, implementation and characterization of SPR sensors in a D-shaped...
Molecular imprinting is earning worldwide attention from researchers in the field of sensing and dia...
A novel optical platform has been used to monitor the interaction between a molecularly imprinted po...
We have used the same biomimetic receptor, a specific molecularly imprinted polymer (MIP), on two di...