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A synergistic combination of 2D MXene and MoO3 nanoparticles for improved gas sensing at room temperature.
- Source :
- Journal of Physics D: Applied Physics; 8/16/2024, Vol. 57 Issue 32, p1-15, 15p
- Publication Year :
- 2024
-
Abstract
- MXene Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> (30% HF-etched, named Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> -30) plays a pivotal role in the substantial enhancement of the structural modification of molybdenum trioxide (MoO<subscript>3</subscript>). Additionally, as the surface MoO<subscript>3</subscript> molecules come into contact with reducing gas moieties, they actively participate in gas sensing at room temperature. The percentage of Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> -30 in the MoO<subscript>3</subscript> matrix was varied at 10%, 20%, and 40%, denoted as MM-10, MM-20, and MM-40, respectively. Structural analysis confirmed the composition of the basic elements and evolution of TiO<subscript>2</subscript> at a higher percentage of Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> -30. Spectroscopy analysis showed the interactions between Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> -30 and MoO<subscript>3</subscript>, showcasing work functions of 6.91 eV, 6.75 eV, and 7.21 eV for MM-10, MM-20, and MM-40, respectively, confirming MM-20 to be an optimum composition. When the samples were exposed to ammonia gas, MM-20 showed a high response (93% for 100 ppm) at room temperature, with a response time of ∼10 s. Compared to bare MoO<subscript>3</subscript>, these samples showed ten-fold improvement. The excess electrons on the surface of Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript> -30 facilitate the formation of O<superscript>2−</superscript> species, which also provides stability to the otherwise highly reactive MXene surface. These species actively react with ammonia molecules in the presence of adsorbed MoO<subscript>3</subscript>, thereby changing the resistance of the system. This can be a significant step towards imparting high gas sensitivity to metal oxides at room temperature via incorporation of an optimum percentage of optimized Ti<subscript>3</subscript>C<subscript>2</subscript>T <subscript>x</subscript>. [ABSTRACT FROM AUTHOR]
- Subjects :
- AMMONIA gas
EXCESS electrons
NANOPARTICLES
GASES
MOLYBDENUM
TEMPERATURE
Subjects
Details
- Language :
- English
- ISSN :
- 00223727
- Volume :
- 57
- Issue :
- 32
- Database :
- Complementary Index
- Journal :
- Journal of Physics D: Applied Physics
- Publication Type :
- Academic Journal
- Accession number :
- 177291480
- Full Text :
- https://doi.org/10.1088/1361-6463/ad436b