Rotan Kumar Saha | Polymer Chemistry | Best Researcher Award

Best Researcher Award

 Rotan Kumar Saha,
Dhaka University of Engineering & Technology

 Rotan Kumar Saha
Affiliation Dhaka University of Engineering & Technology
Country Bangladesh
Scopus ID 59202885000
Documents 7
Citations 45
h-index 4
Subject Area Additive Manufacturing (AM)
Event International Chemical Scientist Awards
ORCID 0009-0006-9828-9544

Rotan Kumar Saha is a researcher affiliated with Dhaka University of Engineering & Technology whose work focuses on Additive Manufacturing (AM). His scholarly publications and citation profile demonstrate sustained contributions to manufacturing science and engineering, providing a foundation for academic recognition within international research communities.[1]

Abstract

This article summarizes the academic profile of Rotan Kumar Saha, emphasizing research activities in Additive Manufacturing, publication record, scholarly impact, and professional achievements. The information is presented in a neutral encyclopedic style to evaluate suitability for the Best Researcher Award through measurable research indicators and academic contributions.[1][2]

Keywords

Additive Manufacturing, Engineering Research, Scopus, Research Impact, Manufacturing Science, Academic Publications, Chemical Engineering Applications, Innovation, Best Researcher Award, Bangladesh.[2]

Introduction

Rotan Kumar Saha conducts research in Additive Manufacturing with emphasis on engineering innovation and manufacturing technologies. His academic activities support knowledge advancement through scientific publications, interdisciplinary collaboration, and dissemination of research findings. These achievements reflect active engagement within the international engineering research community.[1][3]

Research Profile

Affiliated with Dhaka University of Engineering & Technology, Rotan Kumar Saha has established a developing publication portfolio indexed by Scopus. His research profile demonstrates consistent scholarly productivity, recognized citations, and an h-index reflecting growing academic influence within advanced manufacturing and engineering disciplines.[1][2]

Research Contributions

His research contributes to improving additive manufacturing processes, engineering design, and material applications through analytical investigation and experimental evaluation. These studies enhance understanding of manufacturing performance while supporting technological development, practical industrial applications, and future innovation across engineering research domains.[2]

Publications

The researcher has authored seven Scopus-indexed documents covering additive manufacturing and related engineering topics. These publications have accumulated citations from the scientific community, indicating research visibility and providing evidence of continued scholarly dissemination through internationally recognized academic journals.[1][3]

Research Impact

Current bibliometric indicators include forty-five citations and an h-index of four, reflecting measurable scholarly influence. Citation performance suggests that published studies have attracted attention from researchers and contributed to ongoing scientific discussions within manufacturing engineering and related technological fields.[1][2]

Award Suitability

Based on available scholarly metrics, publication activity, institutional affiliation, and research specialization, Rotan Kumar Saha demonstrates qualifications consistent with consideration for the Best Researcher Award. Evaluation should additionally consider originality, peer recognition, research quality, and long-term contributions to scientific advancement.[1]

Conclusion

Rotan Kumar Saha has developed a credible academic profile through publications, citations, and research focused on additive manufacturing. His measurable scholarly achievements, combined with continued research activity, indicate meaningful contributions to engineering science and support consideration within competitive international academic recognition programs.[1][2]

References

  1. Elsevier. (n.d.). Scopus Author Details: Rotan Kumar Saha, Author ID 59202885000.
    https://www.scopus.com/authid/detail.uri?authorId=59202885000
  2. ORCID. (n.d.). ORCID Record: Rotan Kumar Saha.
    https://orcid.org/0009-0006-9828-9544
  3. Google Scholar. (n.d.). Scholar Citation Profile.
    https://scholar.google.com/citations?user=mPWE0dgAAAAJ&hl=en&oi=ao

Merve Guzel | Polymer Chemistry | Innovative Research Award

Innovative Research Award

Merve Guzel,
Pamukkale University

Merve Guzel
Affiliation Pamukkale University
Country Turkey
Scopus ID 56688302900
Documents 24
Citations 487
h-index 13
Subject Area Electrochemistry, Materials Chemistry, Physical Chemistry, Conducting Polymers
Event International Chemical Scientist Awards
ORCID 0000-0002-0603-3933

Merve Guzel is a researcher affiliated with Pamukkale University whose scholarly work focuses on electrochemistry, conducting polymers, materials chemistry, and physical chemistry. Her research portfolio demonstrates contributions to functional materials and electrochemical applications through peer-reviewed publications and measurable citation performance.[1]

Abstract

Merve Guzel has established an academic profile through research in electrochemistry, conducting polymers, materials chemistry, and physical chemistry. Her published studies demonstrate sustained scientific activity, supported by citations and an h-index reflecting scholarly influence. These achievements indicate consistent contributions to chemical sciences and interdisciplinary materials research.[1][2]

Keywords

Electrochemistry; Materials Chemistry; Conducting Polymers; Physical Chemistry; Functional Materials; Electrochemical Sensors; Polymer Science; Surface Engineering; Chemical Research; Innovative Research Award.[2]

Introduction

Merve Guzel conducts research spanning electrochemistry, materials chemistry, physical chemistry, and conducting polymers. Her investigations emphasize functional material development and electrochemical performance while contributing to contemporary chemical science through peer-reviewed publications. The research aligns with advancing innovative technologies and interdisciplinary scientific understanding.[1][3]

Research Profile

Affiliated with Pamukkale University, Merve Guzel has authored twenty-four indexed publications with 487 citations and an h-index of thirteen. Her research interests encompass polymer science, electrochemical materials, and physicochemical characterization, demonstrating sustained academic productivity and measurable scholarly visibility.[1][2]

Research Contributions

Her studies contribute to understanding electrochemical processes and conducting polymer systems while supporting applications in advanced materials. Published findings improve knowledge of material synthesis, characterization, and electrochemical behavior, encouraging continued research across chemistry, materials science, and related interdisciplinary scientific fields.[2][3]

Publications

The publication record includes peer-reviewed journal articles indexed by Scopus, reflecting consistent engagement in chemical research. These works examine electrochemical materials, conducting polymers, and related physicochemical properties while providing reproducible scientific evidence for future investigations and technological applications.[1]

Research Impact

Citation metrics indicate that the research has attracted attention within the scientific community. The combination of publication output, citation performance, and interdisciplinary relevance demonstrates meaningful academic influence while supporting continued progress in electrochemistry and materials-based chemical research.[1][2]

Award Suitability

The documented publication record, recognized citation performance, and research focus in electrochemistry and materials chemistry align with the objectives of the International Chemical Scientist Awards. These measurable scholarly achievements demonstrate qualifications appropriate for academic recognition based on research excellence.[1][2]

Conclusion

Merve Guzel’s academic profile reflects sustained contributions to chemical sciences through research, publication, and scholarly engagement. Her work in electrochemistry and advanced materials continues to support scientific progress, making her research portfolio a noteworthy example of contemporary academic achievement.[1][3]

References

  1. Elsevier. (n.d.). Scopus Author Details: Merve Guzel, Author ID 56688302900. Scopus.https://www.scopus.com/authid/detail.uri?authorId=56688302900
  2. ORCID. (n.d.). Merve Guzel Research Profile.https://orcid.org/0000-0002-0603-3933
  3. Journal Article. (2019). Representative Electrochemistry Research.
    https://doi.org/10.1016/j.snb.2019.126819

Virginie Dulong | Polymer Chemistry | Research Excellence Award

Research Excellence Award

Virginie Dulong
Rouen Normandy University

Virginie Dulong
Affiliation Rouen Normandy University
Country France
Scopus ID 55969651100
Documents 61
Citations 1,858
h-index 25
Subject Area Enzymatic functionalization of polysaccharide
Event International Chemical Scientist Awards

Virginie Dulong is a French academic researcher affiliated with Rouen Normandy University whose work has contributed to the advancement of enzymatic functionalization of polysaccharides and biomaterials science. Her research activities primarily focus on the development of functional biomacromolecules, enzymatic modification processes, and sustainable polymeric systems applicable to biomedical and industrial chemistry. Through interdisciplinary collaborations and peer-reviewed publications, Dulong has established a recognized scholarly presence within the fields of biomaterials, carbohydrate chemistry, and environmentally compatible functional polymers.[1]

Abstract

This article presents an academic overview of Virginie Dulong and her research activities associated with biomaterials chemistry, enzymatic functionalization of polysaccharides, and sustainable polymer systems. Her scientific work has addressed the development of modified polysaccharide structures with applications in biomedical engineering, drug delivery systems, and environmentally compatible materials science. Through consistent publication activity, interdisciplinary collaboration, and citation impact, Dulong has contributed to ongoing developments in chemical and biomolecular research.[2]

Keywords

Enzymatic functionalization, polysaccharides, biomaterials, carbohydrate chemistry, sustainable polymers, biomedical materials, macromolecular chemistry, biopolymers, Rouen Normandy University, chemical sciences.

Introduction

The field of polysaccharide functionalization has gained significant attention within modern chemical sciences due to its relevance in sustainable materials engineering, biomedical applications, and green chemistry. Researchers working in this area investigate methods for modifying natural polymers to improve their physicochemical and biological properties while maintaining environmental compatibility. Virginie Dulong has contributed to this evolving field through studies involving enzymatic approaches to polysaccharide modification and characterization.[3]

Her academic contributions are situated at the intersection of chemistry, biomaterials science, and biotechnology. The integration of enzymatic methodologies into polymer functionalization has become increasingly important for reducing harsh chemical processing conditions and enabling more sustainable production pathways. Dulong’s work reflects these contemporary scientific priorities and demonstrates alignment with internationally recognized research themes in chemical sciences.[4]

Research Profile

Virginie Dulong is affiliated with Rouen Normandy University in France and has developed a research profile centered on biopolymer engineering and functional materials chemistry. According to indexed academic databases, her scholarly output includes more than sixty scientific documents with an established citation record and an h-index reflecting sustained research visibility within her field.[1]

Her work frequently examines the structural modification of polysaccharides through enzymatic and physicochemical techniques designed to improve biocompatibility, stability, and application-specific performance. Such investigations contribute to broader research efforts focused on biodegradable materials and advanced biomolecular systems used in pharmaceutical and biomedical technologies.[5]

  • Research emphasis on enzymatic modification of natural polymers.
  • Interdisciplinary collaboration within biomaterials and chemical sciences.
  • Contribution to environmentally sustainable material development.
  • Peer-reviewed publication activity in international scientific journals.

Research Contributions

Dulong’s research contributions are associated with the study of biomacromolecular systems and the controlled modification of polysaccharide materials. Her investigations have explored the influence of enzymatic reactions on polymer architecture and the resulting implications for material functionality in biomedical contexts.[4]

Several studies linked to her work address the optimization of polysaccharide-derived materials for applications such as drug encapsulation, tissue engineering scaffolds, and biocompatible coatings. These topics are relevant to ongoing international efforts toward sustainable and biologically responsive material systems.[5]

  1. Investigation of enzymatic pathways for polysaccharide functionalization.
  2. Development of biomaterials with enhanced physicochemical properties.
  3. Research related to biodegradable and sustainable polymer systems.
  4. Contribution to interdisciplinary biomaterials engineering research.

Publications

Virginie Dulong has authored and co-authored publications in peer-reviewed scientific journals covering biomaterials chemistry, polysaccharide engineering, and applied polymer science. Her publications contribute to the dissemination of research findings concerning environmentally compatible functional materials and biomedical polymer systems.[2]

  • Studies on enzymatic derivatization of polysaccharides for biomedical applications.
  • Research concerning biopolymer interactions and functional material properties.
  • Articles addressing sustainable methodologies in polymer chemistry.
  • Collaborative publications in interdisciplinary biomaterials research.

Representative scholarly outputs have been indexed in international citation databases, supporting visibility and accessibility within the broader scientific community.[1]

Research Impact

The research impact of Virginie Dulong is reflected through citation activity, publication metrics, and the interdisciplinary relevance of her scientific work. With more than 1,800 citations and an h-index of 25, her publications demonstrate measurable scholarly influence within biomaterials and chemical sciences.[1]

Her research has contributed to scientific understanding of enzyme-assisted polymer modification and the development of sustainable biomaterial systems. These themes align with broader international priorities in environmentally conscious chemistry and biomedical material innovation.[3]

Award Suitability

Virginie Dulong’s academic record indicates suitability for recognition within the framework of the International Chemical Scientist Awards. Her sustained publication activity, citation impact, and specialized contributions to enzymatic functionalization of polysaccharides represent meaningful engagement with contemporary challenges in chemical and biomaterials research.[4]

The interdisciplinary nature of her research, combined with applications relevant to biomedical technologies and sustainable chemistry, demonstrates alignment with award criteria emphasizing scientific innovation, research quality, and scholarly contribution to chemical sciences.[5]

Conclusion

Virginie Dulong has contributed to the advancement of enzymatic polysaccharide functionalization and biomaterials chemistry through interdisciplinary scientific research and peer-reviewed scholarship. Her publication record, citation profile, and research themes demonstrate continued engagement with sustainable and biomedical applications of chemical sciences. The recognition of such work through academic awards reflects the broader importance of environmentally compatible material innovation and collaborative scientific inquiry.[1]

References

  1. Dulong, V., et al. (2026). Antioxidant functionalization of pullulan with ferulic acid using enzymatic catalysis. Carbohydrate Polymers.

    https://www.sciencedirect.com/science/article/abs/pii/S014486172600319X

  2. Dulong, V., et al. (n.d.). A review of thermosensitive polysaccharide-based composite hydrogels for therapeutic applications.

    s. https://www.sciencedirect.com/science/article/abs/pii/S0141813025058477

  3. Dulong, V., et al. (n.d.). Functionalisation and behaviours of polysaccharides conjugated with phenolic compounds by oxidoreductase catalysis: A review.

    https://pubmed.ncbi.nlm.nih.gov/39561827/

  4. Dulong, V., et al. (2024). Polyelectrolyte complexes of chitosan and hyaluronic acid or carboxymethylpullulan and their aminoguaiacol derivatives with biological activities as potential drug delivery systems. Carbohydrate Polymers.

    https://www.sciencedirect.com/science/article/abs/pii/S0144861724005563

  5. Dulong, V., et al. (2024). Injectable polyoxazoline grafted hyaluronic acid thermoresponsive hydrogels for biomedical applications. Journal of Materials Chemistry B.

    https://www.researchgate.net/publication/378252070

Farzaneh Bayat | Polymer Chemistry | Best Researcher Award

Assoc. Prof. Dr. Farzaneh Bayat | Polymer Chemistry | Best Researcher Award

Associate Professor | Azarbaijan Shahid Madani University | Iran

Dr. Farzaneh Bayat is a distinguished researcher whose work has made significant contributions to materials chemistry and nanoscience, particularly in plasmonic nanomaterials, photocatalysis, and polymer-based nanocomposites. With 37 published documents, 248 citations, and an h-index of 10, her research record reflects consistent innovation and academic influence. Her recent studies emphasize the design and functionalization of nanostructured materials for applications in environmental remediation, sensing technologies, and energy-efficient catalysis. Notably, her 2025 publications in leading journals such as Microchemical Journal and Journal of Alloys and Compounds explore plasmonic core–shell nanoparticles and 2D semiconductor frameworks for enhanced photocatalytic and detection performance. Her investigations into polymer–nanocomposite systems and selenium-based optical materials reveal interdisciplinary expertise bridging chemistry, materials science, and nanotechnology. Dr. Bayat’s work stands out for its dual emphasis on fundamental understanding and practical solutions, addressing challenges in pollution control, sustainable materials, and nanostructure design. With collaborations involving over 70 co-authors globally, she actively promotes scientific exchange and multidisciplinary innovation. Through her pioneering contributions to plasmon-enhanced photocatalysis, hybrid nanocomposite engineering, and green nanotechnology, Dr. Bayat continues to advance material synthesis and characterization methods that support sustainability and technological progress. Her dedication to impactful research and innovation positions her as a recognized figure in functional materials and applied nanotechnology, shaping the future of global nanoscience

Dr. Farzaneh Bayat’s research bridges nanomaterials, photonics, and biosensing technologies, driving innovations in renewable energy, early disease detection, and environmental sustainability. Her work enhances global scientific understanding and fosters practical solutions that advance healthcare and clean energy industries.

Hassan Namazi | Polymer Chemistry | Best Paper Award

Prof. Hassan Namazi | Polymer Chemistry | Best Paper Award 

University of Tabriz | Iran

Professor Hassan Namazi is a leading scientist and academic renowned for his pioneering work in polymer chemistry, nanobiopolymers, and advanced drug delivery systems. His research focuses on the design, synthesis, and characterization of dendrimers, metal–organic frameworks (MOFs), and stimuli-responsive biopolymer nanocomposites for applications in cancer therapy, targeted drug delivery, and water remediation. With extensive experience in polymer synthesis, nanocomposite fabrication, spectroscopy, materials characterization, and computational modeling, he has developed innovative platforms for controlled and co-delivery of therapeutic agents, emphasizing biocompatibility, efficiency, and environmental sustainability. His contributions span fundamental research and practical applications, including photoluminescent polymers, glycodendrimers, and hybrid nanomaterials, establishing him as a key figure in advancing multifunctional biomaterials and nanotechnology-driven solutions. Prof. Namazi’s dedication to scientific excellence is reflected in his mentorship of emerging researchers, collaboration with interdisciplinary teams, and prolific publication record, demonstrating a consistent impact on both academic and applied chemical sciences. His work has earned national and international recognition, showcasing his leadership in developing eco-friendly polymers, functional nanocarriers, and stimuli-responsive drug delivery systems that address pressing biomedical and environmental challenges. Professor Namazi’s growing academic impact is evidenced by 10,627 citations, 211 documents, and an h-index of 63, reflecting his outstanding influence and leadership in the global materials science community.

Profiles : 
Google scholar | Scopus | ORCID | ResearchGate | LinkedIn

Featured Publications

Pooresmaeil, M., & Namazi, H. (2026). Iron oxide nanoparticles/polymer nanocomposite hydrogels. In Hydrogels for Wound Healing (pp. 327–363).

Karimi, S., & Namazi, H. (2025). Chitosan/dialdehyde starch coating onto l-tyrosine and curcumin intercalated layered double hydroxide for improved the therapeutic effects of breast cancer. International Journal of Biological Macromolecules, 147274.

Rasoulzadehzali, M., Namazi, H., Larsen, K. L., Mahoutforoush, A., … (2025). Engineering pH-sensitive CA/GO nanocomposite beads for dual-drug oral delivery: Improved therapeutic efficacy against breast cancer cells. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 138081.

Jafari, H., & Namazi, H. (2025). κ-carrageenan coated magnetic hydroxypropyl methylcellulose/chitosan nanoparticles as a pH-sensitive nanocarrier for efficient methotrexate release. International Journal of Biological Macromolecules, 146750. Cited by 1

Karimi, S., & Namazi, H. (2025). Doxorubicin-curcumin-co loaded layered double hydroxide coated with dialdehyde lactose/ZnO via Schiff-base bonding for simultaneous and targeted delivery of drugs to …. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 715, 136628. Cited by 5