Micro-nano-technologies of zinc and copper oxides for sensor and medicine applications
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LUPAN, Oleg, POSTICA, Vasile, HOPPE, Mathias, SHONTYA, Viktor, RAILEAN, Sergey, ADELUNG, Rainer. Micro-nano-technologies of zinc and copper oxides for sensor and medicine applications. In: E-Health and Bioengineering Conference: EHB 2015, Ed. 5, 19-21 noiembrie 2015, Iași. New Jersey, SUA: Institute of Electrical and Electronics Engineers Inc., 2016, Ediţia a 5-a, p. 0. ISBN 978-146737545-0. DOI: https://doi.org/10.1109/EHB.2015.7391542
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E-Health and Bioengineering Conference
Ediţia a 5-a, 2016
Conferința "5th IEEE International Conference on E-Health and Bioengineering"
5, Iași, Romania, 19-21 noiembrie 2015

Micro-nano-technologies of zinc and copper oxides for sensor and medicine applications

DOI:https://doi.org/10.1109/EHB.2015.7391542

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Lupan Oleg1, Postica Vasile1, Hoppe Mathias2, Shontya Viktor1, Railean Sergey1, Adelung Rainer2
 
1 Technical University of Moldova,
2 Institute for Material Science, Christian-Albrechts-University of Kiel
 
 
Disponibil în IBN: 5 decembrie 2022


Rezumat

The combination of sensors and biosensors with medicine and life science promises to yield extremely innovative and revolutionary advances in healthcare. In this work we report on micro- and nano-technologies for copper and zinc oxides crystalline structures. The detailed morphological study of Sn-doped ZnO nanostructured films and CuO nanowire (NW) networks for gas sensing and medicine applications are presented. ZnO based devices demonstrated good hydrogen response (Rair/Rgas ∼ 3.4 to 50 ppm) with fast response and recovery times (2.7 s and 6.1 s, respectively) at operating temperature of 250 °C. In the case of CuO NW networks was observed an ethanol response (Rgas/Rair ∼ 2.8 to 50 ppm) at the same operating temperature. Both sets of samples showed excellent repeatability and stability with complete recovery to initial baseline. Reported results serves as the basis for further investigations in field of biosensors and integration in biochips.

Cuvinte-cheie
CuO, ethanol, nanotechnology, sensor, ZnO