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Tailoring Janus In2SeTe monolayers with Al doping: a computational study for NO x sensing applications
Manik Bala1, Md Tawabur Rahman1, Nilachal Goswami1
1Department of Electrical and Electronic Engineering, Khulna University of Engineering & Technology Khulna-9203 Bangladesh tawabur@eee.kuet.ac.bd.
This study explores Janus In2SeTe monolayers for gas sensing. Aluminum-doped In2SeTe shows enhanced sensitivity and selectivity for detecting nitrogen oxides (NOx), enabling real-time environmental monitoring.
Area of Science:
- Materials Science
- Environmental Science
- Nanotechnology
Background:
- Anthropogenic emissions necessitate advanced gas sensors with high sensitivity and selectivity.
- Janus In2SeTe monolayers are investigated as potential multifunctional gas sensing platforms.
Purpose of the Study:
- To perform a first-principles study on pristine and aluminum-doped Janus In2SeTe monolayers for gas sensing.
- To analyze the adsorption behavior of common pollutants (CO, NH3, CO2, CH4, NO, NO2) and their impact on material properties.
Main Methods:
- Density Functional Theory (DFT) calculations were employed to optimize surface geometry.
- Analysis included adsorption energy, charge transfer, Density of States (DOS), Electron Density Difference (EDD), and recovery time.
- Electronic band structure, conductivity, optical absorption, refractive index, and spin-resolved DOS were evaluated.
Main Results:
- Only NO and NO2 exhibited strong chemisorption on Janus In2SeTe, while other gases showed weak physisorption.
- NOx adsorption significantly narrowed the bandgap, leading to dramatic chemiresistive responses.
- Al-doping substantially boosted sensitivity, with optimized doping levels enhancing sensitivity by factors of 1.26 × 10^5 for NO and 51.6 for NO2.
- Gas-specific shifts in optical absorption and refractive index were observed, alongside the generation of a magnetic moment upon NOx adsorption.
Conclusions:
- Al-doped In2SeTe demonstrates excellent sensing capabilities for NOx detection.
- The material enables concurrent optical, chemiresistive, and magnetic transduction for environmental monitoring.
- Faster recovery times support real-time and reusable detection of NOx pollutants.
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