Alkali metal ion-decorated cyclo[18]carbon molecular wheels for enhanced hydrogen storage: A DFT study

Efficient and lightweight hydrogen storage materials are crucial for sustainable hydrogen energy. Density functional theory (DFT) was employed to investigate H 2 storage on Li + , Na + and K + decorated cyclo[18]carbon (C 18 ) molecular wheels. The positively charged alkali metal ions generate polarized adsorption sites that interact with H 2 through electrostatic attraction and charge-induced polarization. Each decorated C 18 system can adsorb up to 15H 2 molecules, achieving gravimetric capacities of 11.93 wt% for Li + @C 18 , 11.22 wt% for Na + @C 18 , and 10.59 wt% for K + @C 18 . Favorable average and negative successive adsorption energies confirm energetically viable H 2 uptake. Natural population analysis, QTAIM, NCI, RDG and charge-density-difference analyses indicate that adsorption is dominated by weak closed-shell noncovalent interactions and charge-induced polarization. QTAIM results reveal linear correlations between electron density and adsorption strength. Temperature-pressure analysis and AIMD simulations at 300 K demonstrate dynamic H 2 retention and desorption. Overall, alkali-metal-ion decorated C 18 , particularly Li + @C 18 , shows potential for high-capacity hydrogen storage.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-30
DOI
https://doi.org/10.1016/j.ijhydene.2026.157829
Primary Topic
Supramolecular Chemistry and Complexes
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article
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article

Alkali metal ion-decorated cyclo[18]carbon molecular wheels for enhanced hydrogen storage: A DFT study

Muthuramalingam Prakash, K. Rudharachari Maiyelvaganan, Smruti Mishra, Chockalingam Gopalakrishnan
International Journal of Hydrogen Energy
Supramolecular Chemistry and Complexes
article

Alkali metal ion-decorated cyclo[18]carbon molecular wheels for enhanced hydrogen storage: A DFT study

Muthuramalingam Prakash, K. Rudharachari Maiyelvaganan, Smruti Mishra, Chockalingam Gopalakrishnan
article en

Abstract

Efficient and lightweight hydrogen storage materials are crucial for sustainable hydrogen energy. Density functional theory (DFT) was employed to investigate H 2 storage on Li + , Na + and K + decorated cyclo[18]carbon (C 18 ) molecular wheels. The positively charged alkali metal ions generate polarized adsorption sites that interact with H 2 through electrostatic attraction and charge-induced polarization. Each decorated C 18 system can adsorb up to 15H 2 molecules, achieving gravimetric capacities of 11.93 wt% for Li + @C 18 , 11.22 wt% for Na + @C 18 , and 10.59 wt% for K + @C 18 . Favorable average and negative successive adsorption energies confirm energetically viable H 2 uptake. Natural population analysis, QTAIM, NCI, RDG and charge-density-difference analyses indicate that adsorption is dominated by weak closed-shell noncovalent interactions and charge-induced polarization. QTAIM results reveal linear correlations between electron density and adsorption strength. Temperature-pressure analysis and AIMD simulations at 300 K demonstrate dynamic H 2 retention and desorption. Overall, alkali-metal-ion decorated C 18 , particularly Li + @C 18 , shows potential for high-capacity hydrogen storage.

International Journal of Hydrogen EnergyVol. 280
SRM Institute of Science and Technology (IN)
Openalex Percentile: Top 23%
Supramolecular Chemistry and Complexes
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Alkali metal ion-decorated cyclo[18]carbon molecular wheels for enhanced hydrogen storage: A DFT study — Muthuramalingam Prakash, K. Rudharachari Maiyelvaganan, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS