Publication Type : Journal Article
Publisher : Elsevier BV
Source : Materials Letters
Url : https://doi.org/10.1016/j.matlet.2026.141371
Keywords : Two-dimensional MoS2 , Hydrogen sensing, Defect engineering, Inter-sheet barrier modulation, n-type semiconductor
Campus : Amritapuri
School : School of Engineering
Department : Electronics and Communication
Year : 2026
Abstract : Hydrogen is a energy carrier for fuel cells, chemical processing, petroleum refining, and energy storage; however, its flammability necessitates reliable detection systems. (2D) 
 
 
 MoS
 
 
 2
 
 
 nanosheets were synthesized via a two-step method comprising hydrothermal synthesis followed by liquid-phase sonication exfoliation. Material characterization confirmed crystalline 2H-
 
 
 MoS
 
 
 2
 
 
 nanosheets with a layered, porous, interconnected morphology. 
 
 
 MoS
 
 
 2
 
 
 nanosheets served as the sensing layer in a chemiresistive hydrogen sensor. The sensing mechanism is attributed to an oxygen-assisted surface charge-transfer process in which hydrogen reacts with chemisorbed oxygen species and returns electrons to the 
 
 
 MoS
 
 
 2
 
 
 conduction channel. Charge transport modulation across interconnected nanosheet junctions contributes to the sensing response. At the optimal operating temperature of 200 °C, the sensor exhibited a maximum response of 63% to 100 ppm 
 
 
 H
 
 
 2
 
 
 , with response and recovery times of 50 s and 35 s, respectively. The sensing performance is ascribed to synergetic effects of sulfur-vacancy-created active sites, efficient surface charge transfer, and inter-sheet barrier modulation. These findings demonstrate the potential of defect-engineered 
 
 
 MoS
 
 
 2
 
 
 nanosheets for hydrogen sensing.
Cite this Research Publication : Lekshmi M.S., Nilanthy Balakrishnan, Hannah Maju, Celine Sony, Krishnananda S., Akul Prasanth, Abner Sebastian Lopez, Deepthi Jayan K., Amily B., Pankaj Sagar, Akshaya M.V., Priya S., Aparna George, Cost-effective two-step synthesis of 2D MoS2 nanosheets for high-performance hydrogen sensing, Materials Letters, Elsevier BV, 2026, https://doi.org/10.1016/j.matlet.2026.141371