| Authors | فریده صدیقی,مریم غیاثیان آرانی,محسن بهپور |
| Journal | Energy Nexus |
| Page number | 100548 |
| Volume number | 20 |
| IF | 9.5 |
| Paper Type | Full Paper |
| Published At | 2025-09-27 |
| Journal Grade | Scientific - research |
| Journal Type | Electronic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | ISI-Listed ,SCOPUS |
| Keywords | Hydrogen storage Biomass Solvothermal Porous carbon Surfactant Electrochemistry |
|---|
Abstract
This work introduces a new and green way to the hydrothermal synthesis of MnWO4/CeVO4 nanocomposites
(NCs) in the presence of Ginseng extract as a natural surfactant. The nanocomposites were evaluated as novel
candidates for electrochemical hydrogen storage using charge-discharge chronopotentiometry technique. Three
different molar ratios of monoclinic MnWO4 phase to tetragonal CeVO4 phase (1:1, 2:1, and 4:1) were studied,
among which the 4:1 composition showed superior storage capacity (672 mAhg⁻¹ at current of 1 mA after 15
cycles). The influence of different solvents such as ethanol and ethylene glycol on the morphology and performance was also examined. The sample synthesized in ethanol medium displayed a porous morphology and
delivered a higher hydrogen storage capacity (845 mAhg⁻¹ at current of 1 mA after 15 cycles) compared to those
prepared in other solvents. To enhance performance, the optimized MnWO4/CeVO4 nanostructures were further
composited with biomass-derived porous carbon (PC) synthesized using green source of jujuba powder. The
ternary composite containing 70 wt% porous carbon with BET surface area of 15.89 m2
g− 1 exhibited the highest
capacity, reaching up to 1100 mAhg⁻¹ at current of 1 mA after 15 cycles. All samples characterized in terms of
phase purity, crystallite structure, chemical bonding, morphology, and surface area using XRD, FT-IR, EDS, SEM,
TEM and BET-BJH analyses. These findings suggest that structure control through natural surfactants and solvent
selection, coupled with carbon incorporation, can significantly boost hydrogen storage efficiency in transition
metal-based nanocomposites.