Abdellatif Rafik | Chemistry | Best Researcher Award

Mr. Abdellatif Rafik | Chemistry | Best Researcher Award

Mr. Abdellatif Rafik, Laboratory of Organic Chemistry, Catalysis and Environment Faculty of Sciences, Ibn Tofail University, B.P. 133, 14000 Kénitra, Morocco, Morocco

Dr. Rafik Abdellatif is a Moroccan researcher with a Ph.D. in Materials Chemistry from Ibn Tofail University, Kenitra. His expertise lies in the synthesis, characterization, and computational modeling of advanced functional materials, especially phosphate-based hybrids. With a deep commitment to applied research, Dr. Abdellatif focuses on nanoscience, renewable energy, and material innovation. He has a strong publication record, contributing to over ten international peer-reviewed journals and collaborating with renowned scientists. Beyond his academic pursuits, he has recently applied his scientific knowledge in industry as a Site Manager for lithium-based cathode material production, showing versatility between research and industrial application. Known for his proficiency in spectroscopic techniques, DFT modeling, and Hirshfeld surface analysis, Dr. Abdellatif stands out as a promising early-career scientist in the field of materials chemistry.

Publication Profile: 

Orcid

Scopus

Strengths for the Award:

  1. Prolific Scientific Output

    • Authored 10+ peer-reviewed international publications in respected journals.

    • Consistent contributions in the field of hybrid organic-inorganic phosphates, showcasing depth and continuity.

  2. Advanced Methodological Expertise

    • Strong command of Density Functional Theory (DFT), Hirshfeld surface analysis, and spectroscopic techniques (FTIR, UV-Vis).

    • Solid integration of experimental synthesis and theoretical modeling, a hallmark of modern scientific excellence.

  3. Applied Industrial Experience

    • Practical role as Site Manager for the production of Lithium Iron Phosphate (LFP) cathode materials in energy storage.

    • Hands-on experience in technology transfer, process optimization, and industrial safety, demonstrating real-world impact.

  4. Interdisciplinary Focus

    • Merges materials chemistry, renewable energy, and computational chemistry.

    • Involvement in drug docking (ADME/T) and optical property modeling expands his scientific reach.

  5. Collaborative Research

    • Engaged with international co-authors from different institutions, reflecting global scientific networking.

Areas for Improvement:

  1. Wider Research Application

    • Research is currently highly focused on phosphate materials. Exploring adjacent material systems (e.g., perovskites, MOFs, biomaterials) could broaden relevance.

  2. Visibility & Leadership

    • While publication record is solid, increased participation in international conferences, editorial roles, or patent filings would enhance recognition.

  3. Global Engagement

    • Postdoctoral or collaborative research in leading international labs could boost global exposure and elevate impact further.

  4. Funding & Grant Acquisition

    • There is no information on securing competitive research funding, which is often a key metric in award decisions.

Education:

Dr. Abdellatif completed his Ph.D. in 2023 in Fundamental Chemistry at Ibn Tofail University, Kenitra, Morocco. His doctoral thesis focused on the “Physicochemical Synthesis and Characterization of New Advanced Phosphate-Based Materials,” combining experimental and theoretical techniques. He previously earned a Specialized Master’s in Materials Engineering and Cement & Ceramic Technologies in 2016 from the same university. This advanced training provided him with robust interdisciplinary knowledge spanning inorganic chemistry, solid-state physics, and materials processing. His academic journey began with a Bachelor’s degree in Chemistry in 2013 from Chouaib Doukkali University in El Jadida, laying the foundation for his research in solid-state chemistry and materials science. This structured academic path has equipped Dr. Abdellatif with a rich understanding of both fundamental and applied aspects of chemical materials, with particular strength in hybrid organic–inorganic systems and nanostructured functional compounds.

Professional Experience:

Dr. Abdellatif most recently served as Site Manager at Oubaba Sarl, a subcontractor at the Monoammonium Phosphate Laboratory in Jorf Lasfar (April–July 2025). In this role, he led operations related to the synthesis of Lithium Iron Phosphate (LFP) for battery cathodes, demonstrating applied industrial competence. His responsibilities included process optimization, technical monitoring of calcination furnaces, and ensuring industrial safety. He also handled logistics and on-site coordination. This professional role complements his academic expertise in materials synthesis and showcases his ability to translate lab-scale research into scalable industrial processes. Additionally, his strong background in characterization methods (e.g., FTIR, UV-Vis, DFT) and computational modeling makes him highly valuable in research and development environments. His dual experience in academia and industry aligns well with innovation-driven roles and highlights his adaptability in both sectors.

Research Focus:

Dr. Abdellatif’s research centers on the design, synthesis, and quantum chemical analysis of hybrid organic–inorganic phosphate materials. His work extensively utilizes Density Functional Theory (DFT) and Hirshfeld surface analysis to understand molecular interactions, hydrogen bonding, and material stability. He focuses on developing materials with applications in renewable energy, optoelectronics, and energy storage. Many of his studies explore the relationship between crystal structure and functional properties, using techniques like FTIR and UV-Vis spectroscopy to validate computational findings. He is especially interested in phosphate frameworks due to their stability and tunability. His interdisciplinary approach merges synthetic solid-state chemistry with advanced theoretical modeling, positioning him at the frontier of computational materials science. Through collaborations with international researchers, Dr. Abdellatif has broadened the impact of his findings in energy materials and advanced ceramics. His research contributes directly to the sustainable design of new materials with functional applications.

Publications Top Notes:

  1. 📘 Hirshfeld surface analysis, FTIR and UV-Visible spectroscopic and DFT investigations of p-Carboxyphenylammonium dihydrogenmonophosphate monohydrate

  2. 🔬 Hirshfeld surface analysis & quantum chemical study on molecular structure of phosphate

  3. 🧪 Analysis of H-bonding interactions with Hirshfeld surfaces and geometry-optimized structure of the DL-valinium dihydrogen phosphate

  4. ⚛️ One-dimensional hydrogen-bonded N-H…O in the Hybrid Phosphate: Hirshfeld Surface Analysis and DFT quantum chemical calculations

  5. 🔍 Hirshfeld Surfaces Analysis and Computational Approach of Hybrid Organic-Inorganic Phosphate

  6. ⚙️ One step comparative study by Hirshfeld surface analysis, energy frameworks and DFT of hybrid organic-inorganic phosphate

  7. 💠 Investigation of hybrid organic-inorganic dihydrogen phosphate by Hirshfeld surface analysis and quantum chemical study

  8. 🧬 Crystal growth, morphological, mechanical, spectroscopic studies, optical properties, molecular docking, ADME/T, Hirshfeld surfaces analysis and theoretical calculations of hybrid organic-inorganic phosphate compound

  9. 🧿 Comprehensive Structural Characterization and Quantum Mechanical Exploration of O-Phenylenediamine Dihydrogenphosphate

Conclusion:

Dr. Rafik Abdellatif is a highly deserving candidate for the Best Researcher Award, especially among early- to mid-career researchers in materials science and applied chemistry. His balanced profile—blending academic rigor, computational strength, and industrial relevance—demonstrates a mature and impactful research trajectory. With further international exposure and broader application of his methods, his work is poised to make significant global contributions.

dexuan xiang | Chemistry | Best Researcher Award

Mr. dexuan xiang | Chemistry | Best Researcher Award

Mr. dexuan xiang, Huaihua University, China.

Dr. Dexuan Xiang is a professor at the College of Chemistry and Materials, Huaihua University, China. His research focuses on catalytic chemistry, green synthesis, and sustainable materials. He has pioneered palladium-immobilized lignin-based hypercrosslinked polymers for eco-friendly Suzuki-Miyaura reactions. His work, published in Applied Surface Science, highlights innovations in heterogeneous catalysis. With multiple high-impact publications, Dr. Xiang’s contributions advance renewable resources and green chemistry. His research enhances catalyst efficiency, recyclability, and environmental sustainability, making a significant impact in modern chemistry. ⚗️

Profile

Scopus Profile

Orcid Profile

🌟 Suitability for Best Researcher Award

Dexuan Xiang, PhD, a professor at Huaihua University, has made significant contributions to catalytic chemistry. His research on palladium-immobilized lignin-based hypercrosslinked polymers presents an innovative and sustainable approach to heterogeneous catalysis. Achieving high yields in Suzuki-Miyaura reactions with minimal palladium content, his work enhances efficiency, recyclability, and cost-effectiveness. His pioneering research makes him a strong candidate for the Best Researcher Award.

🎓 Early Academic Pursuits

Dexuan Xiang, PhD, embarked on his academic journey with a strong foundation in chemistry and materials science. His early education was marked by excellence, leading him to pursue advanced studies in catalytic chemistry. His passion for sustainable solutions in organic synthesis motivated him to explore innovative approaches to catalyst development.

💼 Professional Endeavors

Currently serving as a Professor at the College of Chemistry and Materials, Huaihua University, China, Dr. Xiang has dedicated his career to pioneering research in heterogeneous catalysis. His work involves designing novel catalysts that enhance efficiency and sustainability in chemical reactions. His professional achievements include numerous publications and active participation in cutting-edge research initiatives.

🔬 Contributions and Research Focus 

Dexuan Xiang’s primary research revolves around heterogeneous catalysis, particularly in the development of sustainable and efficient catalytic systems. One of his groundbreaking contributions is the immobilization of palladium on lignin-based hypercrosslinked polymers, significantly improving the recyclability and efficiency of Suzuki-Miyaura reactions. His work tackles the key challenges of high-cost, poor recyclability, and sustainability in organic synthesis.

His notable research includes:

  • Development of novel hypercrosslinked polymer-based catalysts
  • Optimization of reaction conditions for green chemistry applications
  • Enhancing the efficiency of Suzuki-Miyaura coupling reactions in water
  • Utilization of renewable lignin sources for catalyst support

🌍 Impact and Influence

Dexuan Xiang’s research has far-reaching implications in both academic and industrial sectors. His work contributes to eco-friendly catalysis, reducing the reliance on expensive and non-recyclable catalysts. The impact of his research extends to:
Sustainable chemistry – promoting the use of renewable materials like lignin
Cost-effective synthesis – developing affordable and reusable catalysts
Industrial application – providing a practical solution for large-scale production
Advancing green chemistry principles – minimizing environmental harm while maximizing efficiency

🔮 Legacy and Future Contributions

Through his pioneering efforts, Dr. Xiang has set a new benchmark in catalyst development. His innovative approach to utilizing lignin for catalyst synthesis opens avenues for further exploration in green chemistry. His future endeavors aim to expand the applications of these catalysts in diverse organic reactions, ensuring sustainable and cost-effective chemical synthesis.

Publications Top Notes

“Imidazolium and Pyridine Bifunctionalized Hypercrosslinked Polymers as Efficient and Recyclable Catalysts for CO₂ Cycloaddition”

Journal: Polymer

Publication Date: October 2024

Citations: 1

“Palladium Supported on Triazolyl-Functionalized Hypercrosslinked Polymers as a Recyclable Catalyst for Suzuki–Miyaura Coupling Reactions”

Journal: RSC Advances

Publication Date: May 2020

Citations: 10

“Palladium Immobilized on 2,2′-Dipyridyl-Based Hypercrosslinked Polymers as a Heterogeneous Catalyst for Suzuki–Miyaura Reaction and Heck Reaction”

Journal: Catalysis Letters

Publication Date: September 2020

Citations: 4

“Palladium Catalyst Immobilized on Functionalized Microporous Organic Polymers for C–C Coupling Reactions”

Journal: RSC Advances

Publication Date: October 2019

“Palladium Immobilized on Functionalized Hypercrosslinked Polymers: A Highly Active and Recyclable Catalyst for Suzuki–Miyaura Coupling Reactions in Water”

Journal: New Journal of Chemistry

Publication Date: June 2019

“One-Pot Synthesis of Pyrano[2,3-b]quinolines from Enaminones under Solvent-Free Conditions”

Journal: Synlett

Publication Date: August 2011

“Efficient and Divergent Synthesis of Cyclophosphamide Analogues from 2-Arylamino-3-acetyl-5,6-dihydro-4H-pyrans”

Journal: Chemical Communications

Publication Date: 2008

“A Facile and Efficient Synthesis of Polyfunctionalized Pyridin-2(1H)-ones from β-Oxo Amides under Vilsmeier Conditions”

Journal: Organic Letters

Publication Date: Data not specified

Achieving carbon neutrality through conversion of CO2 to cyclic carbonates using bifunctional benzimidazolium-based pyridine hypercrosslinked polymers

Authors: Y. Shu, Z.Y. Yang, W.K. Pan, Z. Zhang, G. Chen

Journal: Applied Surface Science, 2025

Lignin-based hyper-cross-linked resin as an adsorbent for aniline from aqueous solution

Authors: G. Chen, D. Xiang, Z. Luo, X. Xie, B. Xiang

Journal: International Journal of Biological Macromolecules, 2025