Slaheddine Jabri | Batteries | Innovative Research Award

Innovative Research Award

Slaheddine Jabri
Affiliation Institute for Applied Physics
Country Germany
Scopus ID 56464112700
Documents 10
Citations 89
h-index 6
Subject Area Batteries
Event Metallurgical Engineering Awards
ORCID 0000-0002-8949-4806

Slaheddine Jabri

Institute for Applied Physics, Germany

Slaheddine Jabri is a researcher affiliated with the Institute for Applied Physics in Germany whose scholarly work focuses primarily on battery materials and related energy-storage technologies. His research profile demonstrates contributions to electrochemical materials, materials characterization, and applied physics relevant to advanced energy systems. Based on publicly available bibliometric information, his scientific record includes peer-reviewed publications, citation impact, and measurable research influence within the field of battery science.[1] The profile presented here summarizes publicly accessible academic information in a neutral encyclopedic format and evaluates its relevance to recognition within the Metallurgical Engineering Awards.[5]

Abstract

This article provides a concise academic overview of Slaheddine Jabri based on publicly available bibliometric and professional information. The profile summarizes institutional affiliation, publication activity, citation metrics, and research specialization in battery-related materials. The information has been organized in a neutral reference style suitable for academic recognition and scholarly documentation while maintaining consistency with encyclopedic presentation standards.[1]

Keywords

Battery Materials, Electrochemistry, Applied Physics, Energy Storage, Materials Characterization, Lithium-Ion Batteries, Functional Materials, Scientific Publications, Citation Metrics, Metallurgical Engineering.

Introduction

Advances in battery technologies continue to influence modern transportation, renewable energy integration, and portable electronic systems. Researchers working in battery materials contribute to improving energy density, cycle stability, material sustainability, and electrochemical performance. The research activities of Slaheddine Jabri align with these broader scientific objectives through investigations associated with applied physics and advanced materials.[2]

Research Profile

According to publicly available Scopus records, the researcher has authored ten indexed publications, received eighty-nine citations, and achieved an h-index of six. These bibliometric indicators provide an objective overview of scholarly productivity and citation influence while reflecting ongoing engagement in battery science and applied materials research.[1]

Research Contributions

Research contributions associated with this profile include investigations into battery materials, electrochemical systems, and functional material performance. Such work supports the development of efficient energy-storage technologies by improving material understanding, experimental methodologies, and scientific interpretation. Publications contribute to ongoing discussions surrounding material optimization and practical engineering applications.[2][3]

  • Battery materials research
  • Electrochemical characterization
  • Applied materials science
  • Energy-storage technologies

Publications

The available publication record demonstrates peer-reviewed contributions indexed by major scholarly databases. Published research addresses topics relevant to battery science, advanced functional materials, and applied physics while supporting reproducible scientific investigation. Representative publications include articles assigned Digital Object Identifiers (DOIs), enabling persistent scholarly referencing.[3]

Research Impact

Citation-based indicators suggest measurable scientific visibility within the research community. Citation counts and the h-index provide standardized metrics frequently used to evaluate academic influence alongside publication quality and collaboration. Although bibliometric indicators should be interpreted within disciplinary context, they remain useful objective measures of scholarly engagement.[1][4]

Award Suitability

The Innovative Research Award recognizes scholarly work demonstrating originality, scientific rigor, and contributions to advancing engineering knowledge. Based on publicly available publication metrics, institutional affiliation, and specialization in battery materials, the profile demonstrates characteristics relevant to innovation-driven academic recognition within the Metallurgical Engineering Awards. Final award decisions remain subject to the official evaluation procedures established by the organizing committee.[5]

Conclusion

This academic profile summarizes the publicly available research achievements of Slaheddine Jabri in a structured encyclopedic format. Bibliometric indicators, institutional affiliation, and subject specialization collectively provide a concise overview of scientific activity while supporting transparent academic recognition. The article is intended as an informational summary rather than an evaluative assessment beyond published evidence.

References

  1. Elsevier. (n.d.). Scopus author details: Slaheddine Jabri, Author ID 56464112700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=56464112700
  2. S Jabri, A Rollin, et al. (2026). Analytical and Electrochemical Characterization of Mechanochemically Recovered Graphite from Spent Lithium‐Ion Batteries for Anode Additive Applications.
    https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adsu.202500948
  3. S Jabri, A Röthke, et al. (2026). Sodium contamination in electrolyte: Consequences for high power NMC831–graphite lithium-ion cells.
    https://www.sciencedirect.com/science/article/pii/S0378775326017350
  4. S Jabri, Uta S, et al. (2025). Impact of Aluminum Trifluoride AlF3 Impurities in Electrolyte on NMC811/Graphite Lithium-Ion Battery Performance.
    https://iopscience.iop.org/article/10.1149/1945-7111/ae125e
  5. S Jabri, H Souissi, et al. (2018). Effect of in situ Al doping on structure and optical properties of ZnO nanowires grown by MOCVD.
    https://iopscience.iop.org/article/10.1088/2053-1591/aa9ef5

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Mohammad Ali Nasiri | Sustainable Energy Materials | Research Excellence Award

Research Excellence Award

Mohammad Ali Nasiri
University of Valencia, Spain

Mohammad Ali Nasiri
Affiliation University of Valencia
Country Spain
Scopus ID 57226509306
Documents 14
Citations 232
h-index 6
Subject Area Sustainable Energy Materials
Event Metallurgical Engineering Awards
ORCID 0000-0003-1376-3288

Mohammad Ali Nasiri is a researcher specializing in sustainable energy materials, nanostructured systems, thermoelectric technologies, energy storage materials, and advanced functional devices. His academic activities encompass materials engineering, nanotechnology, clean energy solutions, and the development of environmentally responsible technologies for future energy applications. The Research Excellence Award recognizes distinguished scholarly achievement, sustained research productivity, and contributions to scientific advancement through innovative investigation and interdisciplinary collaboration.[1]

Abstract

Mohammad Ali Nasiri has established a research profile centered on nanostructured materials, thermoelectric systems, sustainable energy technologies, energy storage materials, and advanced optoelectronic devices. His work integrates materials science, nanotechnology, and energy engineering to develop innovative solutions for energy conversion, harvesting, storage, and sensing applications. Through peer-reviewed publications, international collaborations, and contributions to sustainable material development, he has supported advancements in environmentally responsible energy technologies and functional material systems.[2]

Keywords

Sustainable Energy Materials; Thermoelectric Systems; Nanostructured Materials; Energy Storage Technologies; MXenes; Quantum Dots; Perovskites; Nanofabrication; Functional Materials; Optoelectronic Devices.

Introduction

Research in sustainable energy technologies increasingly relies on advanced materials capable of improving energy efficiency, storage performance, and environmental sustainability. Mohammad Ali Nasiri’s academic background includes doctoral training in nanoscience and nanotechnology together with multidisciplinary expertise spanning nanomaterials science and aerospace engineering. His work contributes to emerging technologies designed to address challenges associated with clean energy generation, thermal management, and advanced electronic systems.[1]

Research Profile

As a Postdoctoral Researcher at the Institute of Materials Science (ICMUV), University of Valencia, Mohammad Ali Nasiri conducts research focused on the synthesis, characterization, and application of advanced materials for sustainable energy systems. His experience includes cleanroom microfabrication, nanofabrication technologies, thermal transport studies, and the development of functional materials for energy harvesting and storage applications. His scholarly record includes peer-reviewed publications, international collaborations, and participation in multiple research projects related to advanced energy technologies.[2]

Research Contributions

Mohammad Ali Nasiri’s contributions include research on ionic thermoelectric systems, conductive polymer nanocomposites, MXene-based materials, ultrathin metallic electrodes, lignin-derived sustainable materials, and advanced energy-storage architectures. His investigations emphasize scalable fabrication approaches and environmentally responsible material selection to improve performance in energy conversion and storage devices. These efforts support broader scientific objectives associated with renewable energy adoption and sustainable technological development.[3]

Publications

The researcher has authored publications in internationally recognized journals covering materials science, energy storage, functional materials, and applied physics. His publication portfolio demonstrates interdisciplinary engagement across nanotechnology, energy systems, and sustainable materials research.[4]

  • Advanced Functional Materials
  • Chemical Science
  • Advanced Optical Materials
  • Applied Physics Reviews
  • Journal of Energy Storage

Research Impact

Mohammad Ali Nasiri’s research is reflected through scholarly citations, collaborative projects, peer-review activities, and contributions to the advancement of sustainable energy materials. His work supports ongoing efforts to improve energy efficiency and develop renewable-material-based technologies capable of addressing future environmental and industrial challenges. The integration of sustainable feedstocks with advanced nanomaterials represents a notable aspect of his research direction.[3]

Award Suitability

The Research Excellence Award recognizes individuals who demonstrate sustained scholarly productivity, innovative research contributions, and measurable influence within their fields. Mohammad Ali Nasiri’s record of research activity, international collaboration, publication output, and commitment to sustainable energy technologies aligns with the objectives of the award. His multidisciplinary expertise contributes to advancing scientific understanding while supporting practical applications in energy conversion, storage, and advanced materials engineering.[5]

Conclusion

Mohammad Ali Nasiri’s academic and research achievements illustrate a consistent commitment to scientific investigation in sustainable energy materials and nanotechnology. Through interdisciplinary research, publication activity, collaborative engagement, and contributions to advanced material development, he has supported the advancement of knowledge relevant to contemporary energy and environmental challenges. His profile represents the qualities commonly associated with research excellence within the international scientific community.

References

  1. Elsevier. (n.d.). Scopus author details: Mohammad Ali Nasiri, Author ID 57226509306. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57226509306
  2. Nasiri, M.A., et. al. (2024). Recent advances in ionic thermoelectric systems and theoretical modelling. Chemical Science.
    https://pubs.rsc.org/en/content/articlehtml/2018/dg/d4sc04158e
  3. Nasiri, M.A., et. al. (2026). Carbonization-Enhanced Bio-Based Multilayer Electrodes for Sustainable Energy Storage. Journal of Energy Storage.
    https://www.sciencedirect.com/science/article/pii/S2352152X26026046
  4. Nasiri, M.A., et. al. (2024). Ultrathin transparent nickel electrodes for thermoelectric applications.
    https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/admi.202300705
  5. Nasiri, M.A., et. al. (2025). Lignin-Derived ionic hydrogels for thermoelectric energy harvesting. ACS Applied Polymer Materials
    https://pubs.acs.org/doi/full/10.1021/acsapm.4c03816