Events8th International Symposium on Sensor Science
Published
with-doi10.3390/I3S2021Dresden-10110 (registering DOI)
This submission belongs to the session S1. Nano(bio)Sensors and Bioelectronics of the event 8th International Symposium on Sensor Science
Published date
17 May, 2021
Citation
Diana Isabel Sandoval Bojorquez, Eduardo Sergio Oliveros Mata, Julian Schütt, Michael Bachmann, Larysa Baraban, Impedance characterization of particles one by one using a nanosensor electronic platform, in Proceedings of 8th International Symposium on Sensor Science, 17 May–28 May 2021, MDPI: Basel, Switzerland, doi: 10.3390/I3S2021Dresden-10110
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Impedance characterization of particles one by one using a nanosensor electronic platform

Eduardo Sergio Oliveros Mata 2
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1. Helmholtz-Zentrum Dresden-Rossendorf (HZDR), Institute of Radiopharmaceutical Cancer Research, Dresden, Germany
2. Helmholtz-Zentrum Dresden-Rossendorf (HZDR), Institute of Ion Beam Physics and Materials Research, Dresden, Germany.
Abstract

Impedance cytometry represents a technique that allows the electronic characterization of colloids and living cells in a highly miniaturized way. In contrast with impedance spectroscopy, the measurements are performed at a fixed frequency, providing real-time monitoring of the species traveling over the sensor. By measuring the electrical properties of particles in suspension, the dielectric characteristics (electric conductivity and capacitance) of both cells and particles can be readily determined. During the last years, this technique has been broadly investigated; however, it is still not trivial to differentiate particles of similar size based on their dielectric characteristics. A way to increase the discrimination abilities of this technique could be the integration of nanostructures into the impedance platforms. In this work, we present the impedance cytometry study of particles using microfluidic channels aligned over interdigitated gold nanowire structures as our impedimetric sensor. The characterization of particles of different sizes and their comparison with particles of different compositions will provide an understanding of the correlation between the electrical signal and the own characteristics of each particle. This approach is an attractive element for label-free detection platforms that can be integrated into lab-on-a-chip systems, and that can be further implemented for single-cell analysis.

Keywords
impedance cytometry
nanosensor
gold nanowires
label-free detection
Manuscript
Poster
sciforum-029906_I3S Poster_Sandoval  Bojorquez Diana Isabel.pdf
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