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Microplotter-Printed On-Chip Combinatorial Library of Ink-Derived Multiple Metal Oxides as an 'Electronic Olfaction' Unit

Authors :
Vanessa Trouillet
Albert G. Nasibulin
Victor V. Sysoev
Nikolay T. Kuznetsov
Ilya A. Plugin
Fedor S. Fedorov
Artem S. Mokrushin
Martin Sommer
I. A. Nagornov
I. A. Volkov
Dmitry P. Rupasov
I. Kiselev
A. S. Varezhnikov
Ivan S. Vlasov
T. L. Simonenko
Nikolay P. Simonenko
Vladimir G. Sevastyanov
Elizaveta P. Simonenko
Source :
ACS Applied Materials & Interfaces. 12:56135-56150
Publication Year :
2020
Publisher :
American Chemical Society (ACS), 2020.

Abstract

Information about the surrounding atmosphere at a real timescale significantly relies on available gas sensors to be efficiently combined into multisensor arrays as electronic olfaction units. However, the array's performance is challenged by the ability to provide orthogonal responses from the employed sensors at a reasonable cost. This issue becomes more demanded when the arrays are designed under an on-chip paradigm to meet a number of emerging calls either in the internet-of-things industry or in situ noninvasive diagnostics of human breath, to name a few, for small-sized low-powered detectors. The recent advances in additive manufacturing provide a solid top-down background to develop such chip-based gas-analytical systems under low-cost technology protocols. Here, we employ hydrolytically active heteroligand complexes of metals as ink components for microplotter patterning a multioxide combinatorial library of chemiresistive type at a single chip equipped with multiple electrodes. To primarily test the performance of such a multisensor array, various semiconducting oxides of the p- and n-conductance origins based on pristine and mixed nanocrystalline MnOx, TiO2, ZrO2, CeO2, ZnO, Cr2O3, Co3O4, and SnO2 thin films, of up to 70 nm thick, have been printed over hundred μm areas and their micronanostructure and fabrication conditions are thoroughly assessed. The developed multioxide library is shown to deliver at a range of operating temperatures, up to 400 °C, highly sensitive and highly selective vector signals to different, but chemically akin, alcohol vapors (methanol, ethanol, isopropanol, and n-butanol) as examples at low ppm concentrations when mixed with air. The suggested approach provides us a promising way to achieve cost-effective and well-performed electronic olfaction devices matured from the diverse chemiresistive responses of the printed nanocrystalline oxides.

Details

ISSN :
19448252 and 19448244
Volume :
12
Database :
OpenAIRE
Journal :
ACS Applied Materials & Interfaces
Accession number :
edsair.doi.dedup.....3db94af365774e3f06dd7e330f88278a