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August 19, 2025Scientific Reports13 citationsOpen Access

DFT investigation of efficient hydrogen storage utilizing Li and Na decorated co-doped graphene (B/N)

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NMNasser Y. MostafaKSKamal A. SolimanSHS.M. Abd El Haleem

Key Points

  • Hydrogen storage capacity is significantly improved with co-doped graphene surfaces, enhancing overall efficiency.
  • Analysis of Li and Na decoration reveals strong binding energy, exceeding their cohesive energies for effective storage.
  • Density functional theory was employed to evaluate H2 adsorption behavior in Li/BC4N and Na/BC4N systems.
  • Results highlight the promising applications of Li and Na co-doped graphene in efficient hydrogen storage applications.

Abstract

Abstract This study investigates the hydrogen storage capacity of co-doped graphene with non-bonded B and N atoms (BC 4 N) using density functional theory (DFT). The optimized structure reveals the introduction of co-doping ripples the surface, enhancing potential hydrogen storage applications. The adsorption behavior of Li and Na atoms on the BC 4 N surface is examined, demonstrating a higher binding energy, surpassing their cohesive energies. Density of State (DOS), Partial Density of State (PDOS), and charge transfer analyses indicate electron donation from Li and Na to BC 4 N monolayer, establishing BC 4 N as an electron acceptor. The investigation extends to H 2 adsorption on Li/BC 4 N and Na/BC 4 N systems, revealing a non-dissociative form and a cooperative effect with increasing H 2 molecules. The hydrogen storage gravimetric density is calculated, and desorption temperatures are determined, highlighting the potential of Li/BC 4 N and Na/BC 4 N as promising candidates for efficient hydrogen storage.

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Cite This Study

Mostafa et al. (2025) studied this question.

synapsesocial.com/papers/68af4754ad7bf08b1ead3ecehttps://doi.org/10.1038/s41598-025-14088-8
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