Karim Heydari | Engineering | Best Researcher Award

Dr. Karim Heydari | Engineering | Best Researcher Award

Isfahan University of Technology | Iran

Dr. Karim Heydari is a distinguished scientist and academic in the field of textile engineering and polymer science, renowned for his expertise in developing sustainable and high-performance polymer composites. His research has been instrumental in transforming recycled polyethylene terephthalate (PET) into advanced textile fibers with improved mechanical integrity, flame resistance, and processability. Through innovative use of nanotechnology, eco-friendly flame-retardant systems, and molecular chain extenders, Dr. Heydari has contributed significantly to bridging environmental sustainability with industrial-scale manufacturing. His dedication to advancing polymer recycling technologies positions him as a leading figure in sustainable materials research.

Professional Profile

ORCID

Education

Dr. Heydari holds a strong academic background in textile engineering, polymer processing, and materials science, with specialized training in fiber manufacturing technologies, rheological property analysis, and nanocomposite engineering. His educational journey has provided him with a unique interdisciplinary skill set, enabling him to address challenges in polymer degradation, fiber spinning, and additive compatibility with scientifically sound and technologically viable solutions.

Experience

Throughout his career, Dr. Heydari has led and collaborated on multiple high-impact research projects focused on the optimization of recycled polymers for advanced textile applications. His work encompasses the full material development chain from feedstock selection and additive formulation to reactive extrusion, melt spinning, and product testing. He has applied advanced analytical techniques such as scanning electron microscopy, X-ray diffraction, thermogravimetric analysis, and rheological characterization to evaluate and enhance composite performance. In addition to academic publications, Dr. Heydari has actively collaborated with industrial partners to translate laboratory innovations into production-ready materials, particularly for applications demanding both performance and environmental compliance.

Research Interest

Dr. Heydari’s research interests cover a broad range of topics in sustainable material science, including polymer recycling and upcycling, flame-retardant fiber composites, nano clay dispersion technologies, rheology-driven process optimization, and environmentally friendly additive systems. He is particularly passionate about valorizing multiple-recycled PET often considered unsuitable for high-quality applications  by restoring its molecular architecture and enhancing its functional properties. His research is driven by the goal of creating textile fibers that meet rigorous mechanical, thermal, and safety standards without compromising ecological responsibility.

Awards

Dr. Heydari has gained recognition for his pioneering contributions to sustainable polymer technology and textile engineering. His innovative approach to combining zinc phosphinate flame retardants, Cloisite 30B nanoclay, and multifunctional epoxy-based chain extenders has resulted in composites with exceptional flame resistance, thermal stability, and spinnability. These advancements not only contribute to safer and more durable textile products but also support global sustainability initiatives. His ability to merge scientific innovation with industrial applicability makes him a highly deserving candidate for the Best Researcher Award.

Publications

Dr. Karim Heydari has contributed impactful research on the rheological, thermal, and mechanical enhancement of recycled polyethylene terephthalate (PET) composites, with a focus on flame retardancy and spinnability.

Title: Enhanced Spinning Properties of Chain‐Extended Flame‐Retarded Multiple‐Recycled PET/Cloisite 30B Nanocomposite
Journal: Journal of Applied Polymer Science
Published on: August 2025

Title: Rheological Probing Molecular Weight Increase in Flame Retarded Doubly Recycled PET in the Presence of Nanoclay and Investigating its Spinnability
Journal: Preprint
Published on: January 2025

Conclusion

Dr. Karim Heydari’s contributions to polymer recycling and textile engineering represent a significant step forward in the creation of sustainable, high-performance materials. His work addresses urgent environmental challenges associated with polymer waste while providing viable solutions for industrial fiber production. By integrating advanced material science with practical manufacturing processes, he continues to influence the fields of textile engineering, polymer technology, and sustainable manufacturing. His research not only pushes the boundaries of scientific understanding but also demonstrates a commitment to creating eco-conscious innovations that can be adopted across global industries.

Muhammed Yasin Durgun | Engineering Materials | Best Academic Researcher Award

Assoc. Prof. Dr. Muhammed Yasin Durgun | Engineering Materials | Best Academic Researcher Award

Bartın University | Turkey

Associate Prof. Dr. Muhammed Yasin Durgun is a dedicated researcher and academician at Bartın University, specializing in civil engineering materials and sustainable construction technologies. With a strong foundation in concrete technology, geopolymers, and cement-free systems, Dr. Durgun has contributed significantly to material science and green engineering. His interdisciplinary expertise bridges advanced research with practical industrial applications, supporting both academic excellence and sustainability.

Professional profile👤

Google Scholar

ORCID

Scopus

Strengths for the Awards✨

Dr. Muhammed Yasin Durgun exemplifies academic excellence through a distinguished research portfolio in civil engineering materials, particularly in concrete technology and sustainable construction. His body of work includes 21 SCI-indexed publications, several high-impact journal contributions (e.g., Construction and Building Materials, Journal of Building Engineering), and over 414 citations indexed in Web of Science—attesting to his influence in the field.

Dr. Durgun has played a central role in 10 major research projects, many focused on environmentally conscious construction materials such as alkali-activated systems, geopolymers, and cement-free mortars. His work aligns with global efforts toward sustainability in infrastructure, a key theme in modern engineering research.

🎓 Education

Dr. Durgun completed his higher education in civil engineering and pursued his doctorate with a focus on innovative concrete materials. His academic path has been marked by rigorous training in construction materials and modern concrete technologies, equipping him to lead scientific inquiry into sustainable infrastructure solutions.

💼 Experience

With over a decade of academic experience, Dr. Durgun has served as a lecturer, researcher, and project advisor. He has supervised numerous master’s and Ph.D. theses, delivered over 18 graduate and undergraduate courses, and reviewed more than 150 SCI-indexed journal articles. His work is highly interdisciplinary, involving collaborations on national research grants and university-driven innovation projects.

🔬 Research Interests On Engineering Materials

Dr. Durgun’s research focuses on civil engineering materials such as fresh concrete rheology, self-consolidating concrete, geopolymer technology, alkali-activated binders, rebar corrosion prevention, and concrete durability. His innovative studies contribute to low-carbon and sustainable building practices.

🏆 Awards & Recognitions

While specific award titles are not listed, Dr. Durgun’s impact is evident in his extensive scientific output and advisory roles in high-level research funded by TÜBİTAK and academic institutions. His high citation index (414 Web of Science citations) and numerous research projects attest to his excellence and recognition in the field.

📚 Publications

  • High temperature resistance of concretes with GGBFS, waste glass powder, and colemanite ore wastes after different cooling conditions
    Authors: MY Durgun, AH Sevinç
    Year: 2019
    Citations: 72

  • Investigation of durability properties of concrete pipes incorporating blast furnace slag and ground basaltic pumice as fine aggregates
    Authors: H Bınıci, MY Durgun, T Rızaoğlu, M Koluçolak
    Year: 2012
    Citations: 72

  • Rheological and fresh properties of reduced fine content self-compacting concretes produced with different particle sizes of nano SiO₂
    Authors: MY Durgun, HN Atahan
    Year: 2017
    Citations: 57

  • A Taguchi approach for investigating the engineering properties of concretes incorporating barite, colemanite, basaltic pumice and ground blast furnace slag
    Authors: AH Sevinc, MY Durgun, M Eken
    Year: 2017
    Citations: 52

  • Effect of high temperature on polypropylene fiber-reinforced mortars containing colemanite wastes
    Authors: MY Durgun, S Özen, K Karakuzu, V Kobya, SH Bayqra, …
    Year: 2022
    Citations: 50

  • Strength, elastic and microstructural properties of SCCs’ with colloidal nano silica addition
    Authors: MY Durgun, HN Atahan
    Year: 2018
    Citations: 42

  • Corrosion of basaltic pumice, colemanite, barite and blast furnace slag coated rebars in concretes
    Authors: H Binici, O Aksogan, MY Durgun
    Year: 2012
    Citations: 42

  • Properties of high-calcium fly ash-based geopolymer concretes improved with high-silica sources
    Authors: AH Sevinç, MY Durgun
    Year: 2020
    Citations: 38

  • Modeling of thermal conductivity of concrete with vermiculite by using artificial neural networks approaches
    Authors: O Gencel, F Koksal, M Sahin, MY Durgun, HEH Lobland, W Brostow
    Year: 2013
    Citations: 36

  • Effect of wetting-drying cycles on gypsum plasters containing ground basaltic pumice and polypropylene fibers
    Author: MY Durgun
    Year: 2020
    Citations: 34

🔚 Conclusion

🎓 With deep expertise in sustainable materials and a passion for engineering innovation, Associate Prof. Dr. Muhammed Yasin Durgun exemplifies the qualities of a leading academic researcher. His contribution spans 21 high-impact publications, 10 completed research projects, and multiple national grants under TÜBİTAK. His work strengthens both academic knowledge and environmental stewardship. As a mentor, author, and pioneer in green concrete research, he is a worthy nominee for the Best Academic Researcher Award. 🏅