Sushmita Dandeliya, Khuraijam Nelson Singh, Raju Kumar Yadav, Boddepalli SanthiBhushan, Anurag Srivastava
This paper analyzes graphene as a gas sensor to detect toxic nitrogen oxide (NO) gas by modifying the graphene surface with different doping and defects. Generally, dopants and defects are considered as material imperfection which degrade their performance. However, at the nanoscale level, they enhance material functionality for device applications. In this work, pristine, single vacancy defected, and transition metals (copper, gold, platinum) doped graphene sheets are explored as NO sensing materials. The sensing mechanism is assessed based on the electronic nature, charge transfer, adsorption energy, electrical properties (I-V), and sensitivity. The result shows that defected graphene has the highest adsorption energy of -8.316 eV and 56% sensitivity. However, this extremely strong chemisorption renders the sensor practically irreversible at room temperature, limiting its reusability. In contrast, platinum doped graphene has the highest sensitivity of 143% with lower adsorption energy of -3.201 eV, suggesting better suitability for practical gas sensor. Thus, the work presents a framework for the development of high-performance graphene-based gas sensor using targeted material engineering, specifically through doping and defect engineering.