Showing posts with label sensors. Show all posts
Showing posts with label sensors. Show all posts

Sunday, 8 April 2012

Two scientific articles on graphene-based sensors prove popular in the research community

The first article is on creating a glucose detector by combining graphene with a glucose-sensing enzyme and chitosan. Because graphene has a high surface-to-volume ratio and excellent electron conductivity, the researchers immobilized enzymes in graphene/chitosan nanocomposite film and demonstrated the excellent sensitivity and stability for measuring glucose. This article, in Biosensors and Bioelectronics in 2009, has been cited 128 times, and is in the list of most-cite articles of the journal.

In another popular article, the authors reviewed graphene-based sensors. They covered the fundamental science, including how electrons move between the graphene electrode and the enzyme without mediators. They also discuss graphene-based electrodes for detecting dopamine and other biomolecules for industrial and clinical uses. Scientists have cited the paper 123 times, and it was the second most accessed article in Wiley's Electroanalysis in February 2012.

More information: Shao Y, J et al.  2010.  "Graphene Based Electrochemical Sensors and Biosensors: A Review."  Electroanalysis 22(10):1027-1036.  doi:10.1002/elan.200900571

Kang X, et al.  2009.  "Glucose Oxidase-Graphene-Chitosan Modified Electrode for Direct Electrochemistry and Glucose Sensing."  Biosensors and Bioelectronics 25(4):901-905.  doi:10.1016/j.bios.2009.09.004

Provided by Pacific Northwest National Laboratory (news : web)


View the original article here

Nanowires have superior electrical, mechanical properties and can be put to good use in pressure sensors

Most miniaturized pressure sensors harness the intrinsic properties of piezoresistive materials. A structural change in such a material, induced for example by an external force, results in a complementary change in its electrical resistance. However, piezoresistive materials have two major limitations. Firstly, these materials are not particularly sensitive, which means that low pressures produce weak electronic signals. Secondly, these materials can generate a lot of electrical noise, which can mask the true measurement signal. An ideal transducer should have a high signal-to-noise ratio (SNR). Park and his co-workers have now used nanowires to create a pressure sensor with enhanced SNR properties.

Previous research has shown that nanowires can exhibit high piezoresistive effects because of their small size. To take advantage of this, Park and his co-workers used state-of-the-art material processing techniques to suspend two silicon nanowires between two electrodes on a silicon-on-insulator substrate. Each wire was a few hundred nanometers long and approximately 10 nanometers wide. They were covered in amorphous silicon which both protected them and acted as an electrical connection, referred to as the gate. The researchers attached to this a circular diaphragm: a two-layer membrane of silicon nitride and silicon dioxide. Any stress in the diaphragm was therefore transferred to the nanowire structure.

The team characterized their sensor by passing a controlled stream of air across it. Ammeters measured the current flowing through the device as a known electrical potential was applied across the two electrodes. An additional voltage, the gate bias, was also applied between one of the electrodes and the gate. Park and his co-workers demonstrated that they could achieve a four-fold increase in pressure sensitivity by reversing the direction of this gate bias. This, they believe, is a result of the bias voltage controlling the confinement of the electrons within the nanowire channels — a concept commonly employed in so-called field-effect transistors. An assessment of the device noise characteristics also showed significant improvements with the right choice of operating parameters.

Park and his co-workers believe that the device provides a promising route for applications requiring miniaturized pressure sensors that use little power.

More information: Research article in Journal of Micromechanics and Microengineering

Provided by Agency for Science, Technology and Research (A*STAR)


View the original article here