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Updated: Feb 28, 2026

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Published on: February 1, 2022
DFT insights into metal-functionalized black phosphorene as a potential volatile organic compound sensor for early
D Ramkumar1, K A Jeeva Vergin Raj1, C Preferencial Kala1
1Centre for Materials Sciences and Nanodevices, Department of Physics and Nanotechnology, SRM Institute of Science and Technology, Kattankulathur 603203, India. preferec@srmist.edu.in.
Abstract:
Volatile organic compounds (VOCs) in human breath are increasingly being recognized as powerful non-invasive indicators of cancer, yet achieving their selective and real-time detection at trace levels remains a major challenge. Herein, noble metal-decorated black phosphorene (BP) is introduced as a new class of nanosensors for head and neck cancer (HNC) biomarkers. The interactions of limonene, 2,2-dimethylpropanoic acid, and 3-methylhexane with the sensing substrates were investigated using first-principles calculations based on the density functional theory (DFT) combined with the non-equilibrium Green's function (NEGF) approach. Pristine BP was found to exhibit only weak physisorption (-27.98 to -40.52 kJ mol-1), whereas metal (Au, Ag, and Cu) functionalization dramatically enhanced its sensitivity. Among the systems examined, Ag@BP exhibited the strongest adsorption energy of -129.29 kJ mol-1 (limonene), -56.93 kJ mol-1 (2,2-dimethylpropanoic acid), and -36.66 kJ mol-1 (3-methylhexane). These interactions induced a noticeable charge rearrangement, the formation of electronic states in proximity to the Fermi energy level, and a transition from the semiconducting to metallic behaviour. Current-voltage analysis revealed remarkable sensitivity enhancements as Ag@BP achieved 90-95% conductance changes, whereas pristine BP showed only 1-65%. Recovery time calculations further highlighted the strong chemisorption of limonene (4.4 × 1010 s at 298 K, shortened to 35.8 s at 498 K) and ultrafast desorption of 2,2-dimethylpropanoic acid (6.17 × 10-4 s) and 3-methylhexane (2.65 × 10-6 s), ensuring stability with reversible operation. These findings prove that Ag@BP is a highly sensitive and recyclable 2D nanoplatform for real-time breath-based cancer diagnostics.
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