Preeti Beniwal, Shivani Sagar, Deepak Dange, T. J. Dhilip Kumar
Hydrogen holds strong potential for renewable energy systems, though storage challenges limit its practical deployment. In this study, using dispersion-corrected density functional calculations, the hydrogen storage capacity of a Li-doped novel two-dimensional holey biphenylene (hBP) framework is explored. Phonon dispersion curve and molecular dynamics simulations collectively reveal the structural stability of the hBP framework. Pristine hBP adsorbs H 2 weakly, with an adsorption energy of −0.12 eV/H 2, lies outside the optimal window (−0.2 to −0.7 eV/H 2 ) necessary for effective hydrogen storage. Li doping of the hBP framework significantly improves the adsorption energy and thus the storage capacity of hBP. Upon Li doping, strong local polarization and electron transfer enhance H 2 interaction, increasing the adsorption energy range from −0.25 to −0.41 eV/H 2 . Each Li dopant enables the adsorption of up to six H 2 molecules, contributing to a maximum hydrogen storage capacity of 13.3 wt %. A desorption temperature of 319 K at 1 atm, obtained for the H 2 -saturated Li-doped hBP framework, indicates hydrogen release occurs above its critical temperature, suggesting that the material can store hydrogen safely and with high energy efficiency. The combination of high gravimetric capacity, optimal binding strength, and structural robustness highlights Li-doped hBP as a promising material for next-generation hydrogen storage systems.