KIT-5-Assisted Synthesis of Mesoporous SnO2 for High-Performance Humidity Sensors with a Swift Response/Recovery Speed

Author:

Vojisavljević Katarina1ORCID,Savić Slavica M.2ORCID,Počuča-Nešić Milica13,Hodžić Aden4,Kriechbaum Manfred5ORCID,Ribić Vesna16ORCID,Rečnik Aleksander6ORCID,Vukašinović Jelena13,Branković Goran13,Djokić Veljko78ORCID

Affiliation:

1. Department of Materials Science, Institute for Multidisciplinary Research, University of Belgrade, 11030 Belgrade, Serbia

2. Center for Sensing Technologies, BioSense Institute, University of Novi Sad, 21102 Novi Sad, Serbia

3. Center of Excellence for Green Technologies, Institute for Multidisciplinary Research, University of Belgrade, 11030 Belgrade, Serbia

4. Central European Research Infrastructure Consortium, 34149 Basovizza, Italy

5. Institute of Inorganic Chemistry, Graz University of Technology, 8010 Graz, Austria

6. Department for Nanostructured Materials, Jožef Stefan Institute, 1000 Ljubljana, Slovenia

7. Faculty of Technology and Metallurgy, University of Belgrade, 11000 Belgrade, Serbia

8. Innovation Center of the Faculty of Technology and Metallurgy, University of Belgrade, 11000 Belgrade, Serbia

Abstract

Developing highly efficient semiconductor metal oxide (SMOX) sensors capable of accurate and fast responses to environmental humidity is still a challenging task. In addition to a not so pronounced sensitivity to relative humidity change, most of the SMOXs cannot meet the criteria of real-time humidity sensing due to their long response/recovery time. The way to tackle this problem is to control adsorption/desorption processes, i.e., water-vapor molecular dynamics, over the sensor’s active layer through the powder and pore morphology design. With this in mind, a KIT-5-mediated synthesis was used to achieve mesoporous tin (IV) oxide replica (SnO2-R) with controlled pore size and ordering through template inversion and compared with a sol-gel synthesized powder (SnO2-SG). Unlike SnO2-SG, SnO2-R possessed a high specific surface area and quite an open pore structure, similar to the KIT-5, as observed by TEM, BET and SWAXS analyses. According to TEM, SnO2-R consisted of fine-grained globular particles and some percent of exaggerated, grown twinned crystals. The distinctive morphology of the SnO2-R-based sensor, with its specific pore structure and an increased number of oxygen-related defects associated with the powder preparation process and detected at the sensor surface by XPS analysis, contributed to excellent humidity sensing performances at room temperature, comprised of a low hysteresis error (3.7%), sensitivity of 406.8 kΩ/RH% and swift response/recovery speed (4 s/6 s).

Funder

Ministry of Education, Science and Technological Development of the Republic of Serbia

Slovenian Research Agency through Slovenian-Serbian bilateral Projects

European Union’s Horizon 2020 research and innovation program

CERIC ERIC

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

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