Eshrat Ashraf Ema, Aoly Ur Rahman, Bonganur Khan, Md Masud Alam, Md. Kabir Uddin Sikder
Inspired by the successful implementation of nanotubes in different technological sectors, this study investigates the effects of transition metal (TM) dopants- Vanadium (V), Niobium (Nb), and Tantalum (Ta) on the structural, electronic, and thermodynamic properties of armchair (2, 2) GaN (Ga 10 N 10 ) and GaP (Ga 10 P 10 ) nanotubes using the DFT method. The results demonstrate that among all systems, Ta-doped nanotubes- Ga 9 N 10 -Ta and Ga 9 P 10 -Ta exhibit the highest average binding energies of -4.857 eV and -3.407 eV, respectively, indicating superior structural stability, and this stability is further confirmed by IR spectroscopy analysis, as no imaginary frequencies are observed. A substantial reduction in the HOMO–LUMO band gap is observed upon doping, particularly for V and Nb-doped systems, indicating improved electrical conductivity and charge transfer characteristics, and most doped configurations exhibit band gaps in the range of around 1 eV to 1.5 eV, confirming their suitable semiconducting behavior. The thermodynamic analysis also supports the feasibility of the Ga-site substitution with TM-doped systems. Overall, Ga 9 N 10 -V, Ga 10 P 9 -Nb, Ga 9 N 10 -Ta, and Ga 10 P 9 -Ta nanotubes have the potential for diverse practical applications such as optoelectronic, biological, and chemical sensors, and future quantum technologies.