A simple and low cost optical sensor, based on porous silicon nanotechnology, has been used to detect and quantify the presence of atrazine pesticide in water and humic acid solutions. In both cases, a well defined optical signal variation can be registered, even at low concentration as 1 ppm. The phenomenon can be ascribed to the capillary infiltration of liquid into the pores, which changes the average refractive index of the structure. Due to the resonant cavity enhanced operation of the proposed sensors, very low detection limits can be reached
The detection of pollutants (such as toxins, heavy metal ions, and pesticides) in water and food pla...
In this paper, a new method for pesticide detection based on porous silicon microcavities was propos...
This work presents a system of two optical microcavities made of mesoporous silicon that have been a...
The sensing of chemicals and biochemical molecules using several porous silicon optical microsensor...
Click on the DOI link below to access the article (may not be free).Trace contamination of ground wa...
A simple geometry optical sensor based on porous silicon technology is theoretically and experimenta...
First place winner of poster presentations in the Natural Science section at the 11th Annual Undergr...
The optical properties of porous silicon microcavities are strongly dependent on the environment. Fo...
A novel capacitive field-effect sensor for the direct determination of organophosphorus pesticides b...
An ideal environmental sensor has zero baseline drift, a fast response time, is sensitive and select...
Each year bacteria are responsible for infecting 1.5 billion people around the world. This results i...
Sensitive, rapid, and simple detection methods for the screening of extensively used organophosphoru...
A simple system for the detection of analytes in the atmosphere employing a freestanding nanostructu...
This work presents a demonstrator for online monitoring of pesticides or water contaminants which is...
A label-free optical biosensor based on an oxidized porous silicon layer is designed for rapid detec...
The detection of pollutants (such as toxins, heavy metal ions, and pesticides) in water and food pla...
In this paper, a new method for pesticide detection based on porous silicon microcavities was propos...
This work presents a system of two optical microcavities made of mesoporous silicon that have been a...
The sensing of chemicals and biochemical molecules using several porous silicon optical microsensor...
Click on the DOI link below to access the article (may not be free).Trace contamination of ground wa...
A simple geometry optical sensor based on porous silicon technology is theoretically and experimenta...
First place winner of poster presentations in the Natural Science section at the 11th Annual Undergr...
The optical properties of porous silicon microcavities are strongly dependent on the environment. Fo...
A novel capacitive field-effect sensor for the direct determination of organophosphorus pesticides b...
An ideal environmental sensor has zero baseline drift, a fast response time, is sensitive and select...
Each year bacteria are responsible for infecting 1.5 billion people around the world. This results i...
Sensitive, rapid, and simple detection methods for the screening of extensively used organophosphoru...
A simple system for the detection of analytes in the atmosphere employing a freestanding nanostructu...
This work presents a demonstrator for online monitoring of pesticides or water contaminants which is...
A label-free optical biosensor based on an oxidized porous silicon layer is designed for rapid detec...
The detection of pollutants (such as toxins, heavy metal ions, and pesticides) in water and food pla...
In this paper, a new method for pesticide detection based on porous silicon microcavities was propos...
This work presents a system of two optical microcavities made of mesoporous silicon that have been a...