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

“`

Mahboobeh Shahbazi | Electrochemistry | Women Researcher Award

Dr. Mahboobeh Shahbazi | Electrochemistry | Women Researcher Award

Research Fellow at Queensland University of Technology | Australia

Dr. Mahboobeh Shahbazi is a highly accomplished researcher in materials engineering and condensed matter physics, making her a strong candidate for the Women Researcher Award. Her work focuses on advanced energy materials, including superconductors, magnetocaloric systems, hydrogen liquefaction technologies, and next-generation energy storage and conversion devices. She has demonstrated significant research impact with 43 Scopus-indexed publications, 1,194 citations across 1,072 documents, and an h-index of 19, reflecting both productivity and influence in her field. Her contributions bridge fundamental science and real-world applications, particularly in renewable energy and low-emission technologies. She has played a key role in advancing innovative materials for sustainable energy systems while fostering international collaborations and interdisciplinary research. Her strong citation record, consistent publication output, and leadership in high-impact projects highlight her excellence, originality, and meaningful contribution to scientific advancement, aligning well with the objectives of the Women Researcher Award.

Citation Metrics (Scopus)

1500

1000

500

50

0

Citations
1,194

Documents
43

h-index
19

Featured Publications

Yun Liu | Fuel Cells | Research Excellence Award

Assist. Prof. Dr. Yun Liu | Fuel Cells | Research Excellence Award

Assistant Professor at Beijing Institute of Technology (Zhuhai) | China

Assistant Professor Dr. Yun Liu is a promising researcher in sustainable energy systems, with key contributions to electrochemistry, fuel cells, and battery technologies. His work focuses on direct ammonia fuel cells, hydrogen production, and lithium-ion battery recycling, integrating artificial intelligence to enhance efficiency and material performance. He has advanced innovative solutions for clean energy conversion and storage, particularly through catalyst development and flow-cell technologies. With 24 Scopus-indexed publications, 573 citations from 517 citing documents, and an h-index of 11, his research demonstrates solid academic impact and growing recognition. His interdisciplinary approach and emphasis on sustainable and scalable energy solutions position him as a strong candidate for the Research Excellence Award.

Citation Metrics (Scopus)

600

400

200

20

0

Citations
573

Documents
24

h-index
11

Featured Publications

Tianjie Qiu | Electrochemical Energy | Editorial Board Member

Dr. Tianjie Qiu | Electrochemical Energy | Editorial Board Member

Research Assistant at Peking University | China

Dr. Tianjie Qiu is an emerging leader in advanced materials research, distinguished by 2,075 citations, 25 Scopus-indexed publications, and an h-index of 17, reflecting strong global impact in electrocatalysis and energy storage. His work focuses on rationally engineered ruthenium-based nanocomposites derived from metal-organic frameworks, enabling highly porous structures with exceptional hydrogen and oxygen evolution activity for efficient water splitting. Through innovative alloy modulation, heterostructure formation, and confinement within B/N co-doped carbon nanotubes, he has advanced fundamental understanding of catalytic mechanisms, validated through rigorous experimental–theoretical correlation. His ESI Highly Cited Papers in leading journals such as Nano Energy, ACS Energy Letters, and Angewandte Chemie highlight the significance of his discoveries in tuning active sites, optimizing charge transport pathways, and enhancing catalytic durability. In parallel, he has made notable contributions to potassium-ion battery development by constructing nitrogen-doped microporous carbon superstructures derived from MOF precursors, elucidating adsorption energetics, multi-element doping effects, and structure-driven ion storage enhancements. His work integrates materials design, structural analysis, and electrochemical modeling to deliver high-capacity, high-rate anode systems. Additionally, his influential reviews on MOF-derived materials and graphene-based systems have served as authoritative resources for the broader research community. Dr. Qiu’s consistent high-impact outputs, cross-disciplinary expertise, and ability to bridge nanoscale design with practical energy applications establish him as a strong and deserving candidate for the Editorial Board Member.

Profiles : Scopus | Google Scholar

Featured Publications

Liang, Z., Zhao, R., Qiu, T., Zou, R., & Xu, Q. (2019). Metal-organic framework-derived materials for electrochemical energy applications. EnergyChem, 1(1), 100001. (Cited by: 532)

Qiu, T., Liang, Z., Guo, W., Tabassum, H., Gao, S., & Zou, R. (2020). Metal–organic framework-based materials for energy conversion and storage. ACS Energy Letters, 5(2), 520–532. (Cited by: 488)

Wang, D. G., Qiu, T., Guo, W., Liang, Z., Tabassum, H., Xia, D., & Zou, R. (2021). Covalent organic framework-based materials for energy applications. Energy & Environmental Science, 14(2), 688–728. (Cited by: 351)

Qiu, T., Gao, S., Liang, Z., Wang, D. G., Tabassum, H., Zhong, R., & Zou, R. (2021). Pristine hollow metal–organic frameworks: Design, synthesis and application. Angewandte Chemie International Edition, 60(32), 17314–17336. (Cited by: 219)

Qiu, T., Liang, Z., Guo, W., Gao, S., Qu, C., Tabassum, H., Zhang, H., Zhu, B., & Zou, R. (2019). Highly exposed ruthenium-based electrocatalysts from bimetallic metal-organic frameworks for overall water splitting. Nano Energy, 58, 1–10. (Cited by: 217)

 

Vladimir Atanasov | Fuel Cell | Excellence in Research Award

Dr. Vladimir Atanasov | Fuel Cell | Excellence in Research Award

Team Leader at University of Stuttgart | Germany

Dr. Vladimir Milanov Atanasov is a distinguished researcher in polymer and membrane technology with more than 25 years of international experience in the field of chemical and polymer engineering. He currently serves as Team Leader for Polymer and Membrane Technology at the Institute of Chemical Process Engineering, University of Stuttgart. Born and educated in Bulgaria, he earned his M.Sc. in Organic and Analytical Chemistry from Sofia State University, followed by a Ph.D. under the supervision of Prof. Müllen at the Max Planck Institute for Polymer Research, Mainz. Dr. Atanasov has held several prestigious postdoctoral appointments, including at the MPI for Polymer Research, MPI for Solid State Research, and the University of Stuttgart, where his work focused on fuel cell and biomembrane applications. His expertise spans polymer electrolyte membrane (PEM) preparation, advanced polymerization techniques, post-modification methods, and organic synthesis, particularly in phosphonated and sulfonated fluoro-arylenes and functionalized lipids. He is skilled in a wide range of characterization techniques, including EIS, DMA, NMR, MALDI-ToF, GPC, DSC, and FTIR. Dr. Atanasov has authored 33 scientific documents, including 35 peer-reviewed papers, and holds three patents. His contributions have been cited over 1,181 times, and his current Scopus profile reflects an h-index of 16. His ongoing research focuses on the development and characterization of novel polymer electrolyte membranes for high-temperature proton exchange membrane fuel cells (HT-PEMFC), combining innovative materials and advanced film-forming techniques to enhance efficiency and durability in energy applications.

Profile: Scopus | ORCID | Google Scholar

Feautured Publications

Atanasov, V., Knorr, N., Duran, R. S., Ingebrandt, S., Offenhäusser, A., & Knoll, W. (2005). Membrane on a chip: A functional tethered lipid bilayer membrane on silicon oxide surfaces. Biophysical Journal, 89(3), 1780–1788. Cited by: 250

Schuster, M., de Araujo, C. C., Atanasov, V., Andersen, H. T., Kreuer, K. D., & Maier, J. (2009). Highly sulfonated poly (phenylene sulfone): Preparation and stability issues. Macromolecules, 42(8), 3129–3137. Cited by: 204

Atanasov, V., Lee, A. S., Park, E. J., Maurya, S., Baca, E. D., Fujimoto, C., Hibbs, M., & others. (2021). Synergistically integrated phosphonated poly (pentafluorostyrene) for fuel cells. Nature Materials, 20(3), 370–377. Cited by: 198

Lim, K. H., Lee, A. S., Atanasov, V., Kerres, J., Park, E. J., Adhikari, S., Maurya, S., & others. (2022). Protonated phosphonic acid electrodes for high power heavy-duty vehicle fuel cells. Nature Energy, 7(3), 248–259. Cited by: 162

Atanasov, V., Atanasova, P. P., Vockenroth, I. K., Knorr, N., & Köper, I. (2006). A molecular toolkit for highly insulating tethered bilayer lipid membranes on various substrates. Bioconjugate Chemistry, 17(3), 631–637. Cited by: 94

Atanasov, V., & Kerres, J. (2011). Highly phosphonated polypentafluorostyrene. Macromolecules, 44(16), 6416–6423. Cited by: 93