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Interdigitated electrodes-based Au-MoS<sub>2</sub> hybrid gas sensor for sensing toxic CO and NH<sub>3</sub> gases at room temperature

Saurabh Rawat, Priyanka Bamola, Chanchal Rani, Vishakha Kaushik, Ujjwal Kumar, Charu Dwivedi, Rekha Rattan, Mohit Sharma, Rajesh Kumar, Himani Sharma

2023Nanotechnology26 citationsDOIOpen Access PDF

Abstract

Abstract In the quest to create effective sensors that operate at room temperature, consume less power and maintain their stability over time for detecting toxic gases in the environment, molybdenum disulfide (MoS 2 ) and MoS 2 -based hybrids have emerged as potent materials. In this context, the current work describes the fabrication of Au-MoS 2 hybrid gas sensor fabricated on gold interdigitated electrodes (GIEs) for sensing harmful CO and NH 3 gases at room temperature. The GIEs-based Au-MoS 2 hybrid sensors are fabricated by decorating MoS 2 nanoflowers (MNF) with varying size of Au nanoparticles using an inert gas evaporation technique. It is observed that by varying the size of Au nanoparticles, the crystallinity gets modified, as confirmed by x-ray diffraction and Micro-Raman spectroscopy ( μ RS). The gas sensing measurements revealed that the best sensing response is found from the Au-MoS 2 hybrid (with an average particle size of 10 nm). This particular hybrid shows a 79% response to CO exposure and a 69% response to NH 3 exposure. The measurements are about 3.5 and 5 times higher than the bare MoS 2 when exposed to CO and NH 3 at room temperature, respectively. This enhancement in sensing response is attributed to the modified interfacial interaction between the Au nanoparticles and MNF gets improved, which leads to the formation of a Schottky barrier, as confirmed using x-ray photoelectron spectroscopy and ultraviolet photoelectron spectroscopy analysis. This enables the development of efficient gas sensors that respond quickly to changes in the gas around them.

Topics & Concepts

Materials scienceX-ray photoelectron spectroscopyRaman spectroscopyCrystallinityNanoparticleInert gasTungsten disulfideMolybdenum disulfideAnalytical Chemistry (journal)NanotechnologyElectrodeOptoelectronicsChemical engineeringOpticsPhysical chemistryEngineeringComposite materialChromatographyPhysicsMetallurgyChemistryGas Sensing Nanomaterials and Sensors2D Materials and ApplicationsTransition Metal Oxide Nanomaterials
Interdigitated electrodes-based Au-MoS<sub>2</sub> hybrid gas sensor for sensing toxic CO and NH<sub>3</sub> gases at room temperature | Litcius