| Issue |
Eur. Phys. J. Appl. Phys.
Volume 101, 2026
|
|
|---|---|---|
| Article Number | 14 | |
| Number of page(s) | 11 | |
| DOI | https://doi.org/10.1051/epjap/2026011 | |
| Published online | 22 July 2026 | |
https://doi.org/10.1051/epjap/2026011
Original Article
Structural, hydrogen storage capacity, electronic and optical properties of Rb2LiXH6 (X = Si, Ge, Sn) hydrogen storage materials from first-principles investigation
School of Science, University of Science and Technology Liaoning, Anshan 114051, P.R. China
* e-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
Received:
15
January
2026
Accepted:
24
June
2026
Published online: 22 July 2026
Abstract
Double perovskites exhibit great potential in solid-state hydrogen storage. However, the regulatory mechanism of B-site elements—particularly those from Group IVA (Si, Ge, Sn)—in Rb-based double perovskites and their quantitative impact on hydrogen storage performance remain unclear, which limits the rational design of high-efficiency storage materials. This study employs first-principles calculations based on density functional theory (DFT) to systematically investigate Rb2LiXH6 (X = Si, Ge, Sn), focusing on the structural, electronic, optical, and hydrogen storage properties modulated by B-site (X) substitution. Results show their lattice parameters are 8.31 Å, 8.29 Å, and 8.53 Å, with formation enthalpies of −0.94 eV, −0.35 eV, and −0.35 eV, respectively. Only Rb2LiGeH6 and Rb2LiSnH6 are kinetically stable, possessing gravimetric hydrogen storage capacities of 2.34 wt% and 1.98 wt%, as well as dehydrogenation temperatures of 257.6 K and 259.82 K—values that meet the 2025 hydrogen storage targets issued by the U.S. Department of Energy (DOE). These two materials exhibit metallic characteristics and strong low-energy ultraviolet absorption, with absorption intensity enhanced by the increasing atomic radius of X. This work clarifies the structure-property relationships of Rb-based double perovskites regulated by B-site elements, provides a reliable strategy for tuning light-responsive hydrogen storage via IVA-group doping, and offers valuable theoretical insights for the development of high-performance solid-state hydrogen storage materials, thereby advancing the practical application of hydrogen energy systems.
Key words: First-principles / hydride perovskites / hydrogen storage / physical properties
© EDP Sciences, 2026
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