Computational Investigation of Hafnium Carbide MXenes (Hf3C2Tx) for Ultra-Sensitive Detection of Targeted Volatile
Puspamitra Panigrahi1, Yash Pal2, Hyeonhu Bae3
1Centre for Clean Energy and Nano Convergence, Hindustan Institute of Technology and Science, Chennai 603103, India.
Abstract:
Early detection of gastric cancer (GC) is critical for improving patient survival rates, yet the current diagnostic techniques are invasive and costly. Efficient detection of the targeted volatile organic compounds (VOCs) in patients' exhaled breath could be a promising method for timely GC diagnosis. In this study, we employ first-principles density functional theory (DFT) calculations to investigate the sensing potential of hafnium carbide MXenes (Hf3C2Tx; Tx = O, S, F) toward GC-related VOCs. van der Waals corrected simulations reveal relatively weak and unsuitable adsorption energies (Eads) of -0.56, -0.47, -0.62, and -0.60 eV for the targeted VOCs, cyclohexanone, furaldehyde, pentanone, and phenol, respectively. However, a small doping of selected transition metals (Fe, Ni, and Zn) in Hf3C2O2 improves the adsorption mechanism enormously. Among the studied systems, Fe-decorated Hf3C2O2 (Fe-Hf3C2O2) improves Eads values to -1.97, -0.91, -1.34, and -1.84 eV for cyclohexanone, furaldehyde, pentanone, and phenol, respectively, which are perfect for sensing under ambient conditions. Apart from adsorption properties, charge transfer mechanism, electronic properties, work function, sensing response, recovery time, and electrostatic potential calculations further authenticated the potential of metal-decorated Hf3C2O2 as ideal nanosensing materials toward the targeted VOCs. Finally, thermodynamic analysis based on the Langmuir adsorption model reveals that metal-decorated Hf3C2O2 could detect the mentioned VOCs at concentrations below parts-per-billion (ppb) levels. These findings could serve as a foundation for developing efficient nanosensors for detecting GC-related VOCs, thus helping early diagnosis to improve survival rates.
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