| نویسندگان | Foroozan Samimi |
| همایش | Electrode material based on sol-gel synthesized Ca-Mn-O nanostructures for electrochemical hydrogen storage application |
| تاریخ برگزاری همایش | 2024-11-06 - 2024-11-07 |
| محل برگزاری همایش | 1 - قم |
| ارائه به نام دانشگاه | دانشگاه قم |
| نوع ارائه | سخنرانی |
| سطح همایش | ملی |
| کلید واژه ها | Sol, gel Synthesis, nanostructures, Hydrogen storage |
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چکیده مقاله
The growing demand for efficient and sustainable energy solutions has intensified the
exploration of advanced materials for hydrogen storage1
. In this study, we investigate the
potential of calcium-manganese oxide (Ca-Mn-O) nanostructured materials as a high-capacity
hydrogen storage. Ca-Mn-O nanostructures are synthesized using a sol-gel method, yielding
highly porous, high-surface-area materials, ideal for gas adsorption applications. Also, aminoacids is chosen as the best fuel and capping agent, resulting in the production of manganate
materials. In order to compare the generated samples' surface area, magnetic properties, purity,
and structural, chemical, and physical characteristics with one another.
Including Structural and morphological analysis reveals the formation of well-defined
nanoscale architectures, which enhance hydrogen adsorption through both physisorption and
mechanisms. Through the use of the CV and CHP techniques in a three-electrode cell with a
2.0 M KOH electrolyte, the potential of Ca-Mn-O materials for electrochemical energy storage
was examined. By applying advanced characterization techniques such as scanning electron
microscopy (SEM), transmission electron microscopy (TEM), and X-ray diffraction (XRD),
this project will offer in-depth insights into the composition-structure-morphologyperformance relationships of hydrogen storage2
. The results demonstrate that Ca-Mn-O
nanostructures exhibit improved hydrogen uptake compared to bulk materials, attributed to
their surface chemistry and pore distribution. These findings suggest that Ca-Mn-O
nanostructures hold promise as efficient, cost-effective hydrogen storage materials,
contributing to the advancement of hydrogen-based energy systems.