Field effect transistors have risen as one of the most promising techniques in the development of biomedical diagnosis and monitoring. In such devices, the sensitivity and specificity of the sensor rely on the properties of the active sensing layer (gate dielectric and probe layer). We propose here a new type of transistor developed for the detection of Fe(3+) ions in which this sensing layer is made of a monolayer of lipids, engineered in such a way that it is not sensitive to pH in the acidic range, therefore making the device perfectly suitable for biomedical diagnosis. Probes are γ-pyrone derivatives that have been grafted to the lipid headgroups. Affinity constants derived for the chelator/Fe(3+) complexation as well as for other ions ...
There is an increasing interest in low cost, timesaving, yet reliable, point-of-care assays. Direct...
The design of bioelectronic devices that enables accurate detection of biomolecules in ionic solutio...
In the last decade, nanoscale field-effect transistor biosensors have proven to be powerful, ultra-s...
Field effect transistors have risen as one of the most promising techniques in the development of bi...
Biosensing technologies are required for point-of-care testing (POCT). We determine some physical pa...
As on the one handa field effect transistor (FET) is a widespreadelectronic device for a potentiome...
We present a review of field effect transistors (FET) from the point of view of their applications t...
The development of next generation medicines demands more sensitive and reliable label-free sensing ...
The development of next generation medicines demands more sensitive and reliable label-free sensing ...
ABSTRACT: Transistor-based nanoelectronic sensors are capable of label-free real-time chemical and b...
abstract: The growth of the medical diagnostic industry in the past several decades has largely been...
A novel type of bioelectronic region ion sensitive field effect transistor (RISFET) nanosensor was c...
A platform based on a highly selective and sensitive detection device functionalized with a well-des...
345-353Introduced as a tool for electrophysiology three and a half decades ago, the ion-sensitive fi...
Anchored, biotinylated phospholipids forming the capturing layers in an electrolyte‐gated organic fi...
There is an increasing interest in low cost, timesaving, yet reliable, point-of-care assays. Direct...
The design of bioelectronic devices that enables accurate detection of biomolecules in ionic solutio...
In the last decade, nanoscale field-effect transistor biosensors have proven to be powerful, ultra-s...
Field effect transistors have risen as one of the most promising techniques in the development of bi...
Biosensing technologies are required for point-of-care testing (POCT). We determine some physical pa...
As on the one handa field effect transistor (FET) is a widespreadelectronic device for a potentiome...
We present a review of field effect transistors (FET) from the point of view of their applications t...
The development of next generation medicines demands more sensitive and reliable label-free sensing ...
The development of next generation medicines demands more sensitive and reliable label-free sensing ...
ABSTRACT: Transistor-based nanoelectronic sensors are capable of label-free real-time chemical and b...
abstract: The growth of the medical diagnostic industry in the past several decades has largely been...
A novel type of bioelectronic region ion sensitive field effect transistor (RISFET) nanosensor was c...
A platform based on a highly selective and sensitive detection device functionalized with a well-des...
345-353Introduced as a tool for electrophysiology three and a half decades ago, the ion-sensitive fi...
Anchored, biotinylated phospholipids forming the capturing layers in an electrolyte‐gated organic fi...
There is an increasing interest in low cost, timesaving, yet reliable, point-of-care assays. Direct...
The design of bioelectronic devices that enables accurate detection of biomolecules in ionic solutio...
In the last decade, nanoscale field-effect transistor biosensors have proven to be powerful, ultra-s...