| Literature DB >> 27417510 |
Julian Schütt1, Bergoi Ibarlucea1,2, Rico Illing1,2, Felix Zörgiebel1,2, Sebastian Pregl1,2, Daijiro Nozaki1, Walter M Weber2,3, Thomas Mikolajick2,3, Larysa Baraban1,2, Gianaurelio Cuniberti1,2.
Abstract
The conjunction of miniature nanosensors and droplet-based microfluidic systems conceptually opens a new route toward sensitive, optics-less analysis of biochemical processes with high throughput, where a single device can be employed for probing of thousands of independent reactors. Here we combine droplet microfluidics with the compact silicon nanowire based field effect transistor (SiNW FET) for in-flow electrical detection of aqueous droplets one by one. We chemically probe the content of numerous (∼10(4)) droplets as independent events and resolve the pH values and ionic strengths of the encapsulated solution, resulting in a change of the source-drain current ISD through the nanowires. Further, we discuss the specificities of emulsion sensing using ion sensitive FETs and study the effect of droplet sizes with respect to the sensor area, as well as its role on the ability to sense the interior of the aqueous reservoir. Finally, we demonstrate the capability of the novel droplets based nanowire platform for bioassay applications and carry out a glucose oxidase (GOx) enzymatic test for glucose detection, providing also the reference readout with an integrated parallel optical detector.Entities:
Keywords: Silicon nanowires FET; droplet-based microfluidics; glucose assay; nanosensor; point-of-care diagnostics
Year: 2016 PMID: 27417510 DOI: 10.1021/acs.nanolett.6b01707
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189