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Synthesis of SnS2 modified to sulfated tin oxide by electrochemical method and VOC sensing properties

dc.contributor.authorSahin, Ayse Nur
dc.contributor.authorAltindal, Ahmet
dc.contributor.authorOzdemir, Zeynep Guven
dc.date.accessioned2026-06-27T15:32:25Z
dc.date.issued2026
dc.description.abstractThis study investigates the room-temperature gas-sensing performance of next-generation sensors fabricated by electrochemically transforming 2D SnS2 films into SO42-/SnO2 structures. The sensors were prepared on an interdigital transducer via the spin-coating method, followed by low-potential electrochemical oxidation in a sulfuric acid-methanol medium to form a 3D SO42-/SnO2 structure. Unlike conventional high-temperature oxidation or chemical etching methods that cause bulk degradation, this study employs a low-potential electrochemical oxidation-sulfation strategy to controllably convert the SnS2 surface into SO42-/SnO2 while preserving the nano-structure. While the Sn core structure remained intact, FTIR, EDX, and XPS analyses confirmed the successful surface sulfation and the formation of sulfate-related chemical states on the SnO2 surface. XRD analysis verified crystalline-level structural transformation, and SEM imaging revealed distinct surface morphology changes. The gas-sensing performance was systematically evaluated against VOC's vapors over a concentration range of 50-350 ppm, enabling a comprehensive assessment of sensitivity and selectivity. Results showed that the SnS2-based sensor exhibited high sensitivity to acetone, whereas the SO42-/SnO2 structure demonstrated nearly tenfold enhanced responsiveness to NH3 vapor. Sulfate functionalization introduced Lewis acidic surface sites, strengthening interactions with NH3 and enabling nA-level responses. Although increased humidity (30-90 % RH) reduced response amplitude, reliable NH3 sensing was maintained, with interference tests at 50 % RH confirming robust performance. Furthermore, stable and repeatable signals over 10 days demonstrated excellent durability. These results highlight electrochemical surface engineering as an effective strategy to develop metal oxide-and chalcogenide-based NH3 sensors with improved selectivity, humidity tolerance, and long-term stability.en
dc.description.sponsorshipYildiz Technical University Scientific Research Projects Coordination Department [FDK-2024-5950]
dc.description.urihttps://doi.org/10.1016/j.micrna.2026.208570
dc.identifier.doi10.1016/j.micrna.2026.208570
dc.identifier.eissn2773-0123
dc.identifier.urihttps://hdl.handle.net/20.500.14981/71708
dc.identifier.volume212
dc.identifier.wos001671080700001
dc.language.isoeng
dc.publisherACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
dc.relation.ispartofMICRO AND NANOSTRUCTURES
dc.subjectSnS2
dc.subjectSO42-/SnO2
dc.subjectElectrochemical
dc.subjectVOC sensor
dc.subjectNH3
dc.subjectNANOSTRUCTURES
dc.subjectHETEROJUNCTION
dc.subjectFABRICATION
dc.subjectAMMONIA
dc.subjectPhysics
dc.titleSynthesis of SnS2 modified to sulfated tin oxide by electrochemical method and VOC sensing properties
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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