Mubdiul Islam Rizu, Mohamed Elsheshtawy, Fatima Ezahra Annanouch, Dalal Fadil, Eduard Llobet
The protection of human health and the world’s ecosystem necessitates the immediate development of low power, highly selective chemiresistive hydrogen sulfide (H 2 S) gas sensors. Herein, for the first time we report on the fabrication of cuprous oxide (Cu 2 O) nanoparticles decorated tungsten diselenide (WSe 2 ) nanosheets for selective detection of H 2 S gas. In the initial step, a continuous WSe 2 film was deposited on SiO 2 /Si substrate using a hydrogen free atmospheric pressure chemical vapor deposition (APCVD) method. Subsequently, the bottom-up grown WSe 2 film was functionalized through the deposition of Cu 2 O nanoparticles employing simple aerosol assisted chemical vapor deposition (AACVD) technique. Morphological, structural and compositional analyses of the sensing layer confirm the abundant distribution of Cu 2 O nanoparticles over WSe 2 surface. Within the experimentally tested range of 1 to 7 ppm, the sensor exhibited a remarkable response of 14% and 28%, respectively, without applying any external stimuli. Based on this experimental data, a theoretical limit of detection (LOD) as low as 380 ppb was calculated, along with a notable sensitivity of 2.25% ppm -1 towards H 2 S gas. Furthermore, the sensor demonstrated pronounced selectivity, outstanding repeatability, robust long-term stability and partial humidity tolerance. Overall, these results represent a major advancement for metal oxide functionalized transition metal dichalcogenides (TMDs) in the field of H 2 S gas sensing for environmental safety.