Dr. Youssef Doubi | Thin Film Technologies | Research Excellence Award

Dr. Youssef Doubi | Thin Film Technologies | Research Excellence Award

Lorraine University | France

Dr. Youssef Doubi is a materials scientist specializing in thin film technologies, with strong expertise in the design, fabrication, and optimization of functional semiconductor and nanostructured coatings for advanced technological applications. His research focuses on the development of metal oxide and hybrid thin films using cost-effective and scalable deposition techniques, including spray pyrolysis, spin coating, dip coating, and electrodeposition. Dr. Doubi’s work emphasizes the precise control of structural, optical, electrical, and sensing properties of thin films, enabling their use in gas sensors, optoelectronic devices, photovoltaic systems, photocatalysis, energy storage, and hydrogen production. He is particularly recognized for integrating experimental fabrication with advanced characterization methods and numerical modeling to achieve high-performance materials tailored for environmental monitoring and renewable energy technologies. In addition to his research activities, Dr. Doubi has demonstrated a strong commitment to higher education through teaching, laboratory instruction, and supervision of postgraduate researchers, contributing to the training of students in applied physics, materials science, and electronic systems. His academic profile reflects active engagement in interdisciplinary and international research collaborations, as well as service to the scientific community through peer review and scholarly dissemination. Dr. Doubi’s work is driven by a clear vision of sustainability, innovation, and practical impact, aiming to address challenges related to energy efficiency, pollution control, and green technologies through advanced thin film materials. His ability to combine rigorous scientific methodology with real-world applications highlights his growing influence in the field of thin film technologies. Through sustained research productivity, educational involvement, and commitment to technological advancement, Dr. Youssef Doubi has established himself as a promising and impactful researcher and is a deserving recipient of the Research Excellence Award in Thin Film Technologies.

Citation Metrics (Scopus)

250
200
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50
0

Citations
209

Documents
21

h-index
10

Citations

Documents

h-index


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Featured Publications

Mixed-Phase Electrodeposited MoS2 Quantum Dots for Solar-Driven Dye Removal

Journal of Photochemistry and Photobiology A: Chemistry, Article 116987, 2025

Dr. Ciprian Ionut Moraras | Composite Materials | Excellence in Research Award

Dr. Ciprian Ionut Moraras | Composite Materials | Excellence in Research Award

Gheorghe Asachi University | Romania

Dr. Ciprian Ionuț Moraraș is a dedicated researcher in composite materials and mechanical engineering, with strong expertise in structural behavior, fatigue analysis, and experimental testing of advanced material systems. His academic and research work is centered on understanding how composite and metallic materials respond to complex operational loads, with particular emphasis on durability, damage mechanisms, and structural reliability. Dr. Moraraș has developed a solid foundation in strength of materials, experimental mechanics, and non-destructive testing, enabling him to design and implement advanced testing methodologies for real-world engineering components. His research has placed special focus on wind turbine blades and reinforced polymer structures, where he has investigated the influence of cyclic loading, fiber orientation, and combined stress states on mechanical and elastic performance. By integrating experimental testing with analytical evaluation, he contributes to improved assessment and optimization of composite structures used in energy, transportation, and industrial applications. In addition to his research activities, Dr. Moraraș is actively involved in academic teaching and supervision, supporting undergraduate and postgraduate students in mechanical engineering through laboratory instruction, seminars, and thesis guidance. His professional background also includes applied engineering experience in industrial maintenance and mechanical systems, strengthening his ability to connect research outcomes with practical engineering needs. He has contributed to innovative engineering solutions through patented testing devices and sensor systems, reflecting his commitment to applied research and technological development. Dr. Moraraș is known for his analytical mindset, reliability, and interdisciplinary approach, combining theory, experimentation, and engineering judgment. Through his sustained contributions to composite material testing, structural analysis, and engineering education, Dr. Ciprian Ionuț Moraraș has established a strong professional profile and is a deserving recipient of the Excellence in Research Award.

Citation Metrics (Scopus)

50
30
10
5
0

Citations
42

Documents
10

h-index
5

Citations

Documents

h-index


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Featured Publications

Influence of Stress Concentrators on Tensile Specimens


– Bulletin of the Polytechnic Institute of Iași Machine constructions Section 71(2), 2025

Aspects Concerning the Elastic Properties of the Aligner Materials


– Romanian Journal of Oral Rehabilitation, 17(1), 2025

Aspects Concerning the Mechanical Resistance of the Aligner Materials


– Romanian Journal of Oral Rehabilitation, 17(1), 2025

Hybrid Biocomposites: Properties and Performance for Exoskeleton Applications


– The 10th International Conference on ADVANCED COMPOSITE MATERIALS ENGINEERING At: Brașov, 2024

Dr. Qingyong Li | Composite Materials | Research Excellence Award

Dr. Qingyong Li | Composite Materials | Research Excellence Award

Guangdong University of Petrochemical Technology | China

Dr. Qingyong Li is an emerging researcher in composite materials and environmental catalysis whose work has contributed significantly to advanced material design, heterogeneous catalysis, and sustainable pollutant treatment technologies. With a growing research footprint reflected in 453 citations across 370 citing documents, he has established a solid academic reputation supported by 11 scientific documents and a steadily rising h-index of 8, demonstrating both impact and consistency in high-quality research output. As a faculty member in the School of Environmental Science and Engineering at Guangdong University of Petrochemical Technology, Dr. Li focuses on the development of functional composite materials, catalytic nanostructures, and clay-based or mineral-supported metal quantum dots aimed at efficient degradation of persistent organic pollutants. His research integrates composite chemistry, environmental engineering, photocatalysis, and advanced oxidation processes, with particular emphasis on peroxymonosulfate and peroxydisulfate activation mechanisms, oxygen-vacancy engineering, and visible-light-driven catalytic systems. Dr. Li’s contributions include the design of kaolin-supported cobalt nanostructures, red-mud-derived layered composites, magnetic oxide systems, and mixed metal catalysts with enhanced activity and stability. His publications in respected international journals highlight his expertise in mechanochemical synthesis, pollutant mineralization pathways, catalyst reusability, and structure–function relationships in composite materials. Through interdisciplinary collaborations, he has advanced the understanding of composite catalyst behavior, free-radical generation, charge separation efficiency, and surface-adsorption kinetics, offering practical solutions for wastewater treatment and environmental remediation. Dr. Li’s research not only deepens theoretical insights into catalytic mechanisms but also provides scalable strategies for transforming industrial waste into high-value materials, demonstrating strong alignment with global sustainability priorities. His rapidly increasing citation profile, innovative approaches to catalyst development, and commitment to environmental materials research position him as an impactful and promising scientist deserving of recognition through the Research Excellence Award.

Profiles: Scopus | Orcid

Featured Publications

Li, Q., Yan, Z., Yang, X., Li, J., Li, R., Qiu, B., Wang, N., & Wang, S. (2026). Natural layered kaolin supported cobalt quantum dots for rapid degradation of carbamazepine via peroxymonosulfate activation: Performance and mechanism. Chemical Engineering Science.

Li, Q., Zhang, J., Xu, J., Cheng, Y., Yang, X., He, J., Liu, Y., Chen, J., Qiu, B., Zhong, Y., et al. (2024). Magnetic CuFe₂O₄ nanoparticles immobilized on mesoporous alumina as highly efficient peroxymonosulfate activator for enhanced degradation of tetracycline hydrochloride. Separation and Purification Technology.

Li, Q. (2022). Photocatalysis activation of peroxydisulfate over oxygen vacancies-rich mixed metal oxide derived from red mud-based layered double hydroxide for ciprofloxacin degradation. Separation and Purification Technology.

Ba, J., Wei, G., Zhang, L., Li, Q., Li, Z., & Chen, J. (2021). Preparation and application of a new Fenton-like catalyst from red mud for degradation of sulfamethoxazole. Environmental Technology.

Li, Q. (2021). Novel step-scheme red mud based Ag₃PO₄ heterojunction photocatalyst with enhanced photocatalytic performance and stability in photo-Fenton reaction. Chemical Engineering Journal.

Dr. Behnaz Arefian | Composite Materials | Research Excellence Award

Dr. Behnaz Arefian | Composite Materials | Research Excellence Award

Isfahan University of Technology | Iran

Dr. Behnaz Arefian is a dedicated civil engineering researcher specializing in fiber-reinforced polymer (FRP) composites, structural strengthening systems, and the performance evaluation of reinforced concrete subjected to various loading conditions. She has developed a strong academic and professional reputation through impactful experimental and analytical research on FRP-reinforced and FRP-strengthened concrete structures, contributing to improved understanding of bond behavior, interface mechanics, and the structural response of advanced composite-concrete assemblies. Her research achievements demonstrate measurable scholarly influence, with 52 citations referenced across 40 citing documents, supported by 3 peer-reviewed research documents and an h-index of 2, reflecting an emerging yet growing presence in the scientific community. Dr. Arefian’s work includes the development of analytical models and experimental frameworks for assessing effective bond length, GFRP bar performance, flexural strengthening mechanisms, debonding behavior, and the structural reliability of composite-enhanced concrete beams and joints. She has conducted extensive laboratory investigations addressing bond strength enhancement, acoustic emission monitoring, failure depth modeling, and progressive cracking behavior under mechanical and thermal loading. Her scholarly contributions appear in reputable scientific journals such as Composite Structures, Journal of Composites for Construction, Construction and Building Materials, and Results in Engineering, along with presentations at international conferences. Dr. Arefian additionally engages in professional peer-review activities for international journals and has been recognized for academic excellence through competitive awards, demonstrating dedication to scientific rigor, leadership, and innovation. Her research supports sustainable and resilient construction technologies through the integration of lightweight high-strength materials, performance-optimized reinforcement solutions, and advanced failure prediction models. With strong expertise in FRP composites, GFRP bars, structural analysis, scientific writing, international collaboration, and experimental testing, Dr. Arefian continues to advance innovation in structural material science and modern engineering practice. She remains committed to contributing impactful solutions for safer, more durable, and sustainable infrastructure systems.

Profile: Scopus

Featured Publications

Generic assessment of effective bond length of FRP-concrete joint based on the initiation of debonding: Experimental and analytical investigation. (2021). Composite Structures, 277, 114625.

Experimental investigation and modeling of FRP–concrete joint bond strength based on failure depth. (2021). Journal of Composites for Construction, 25(6), 04021050.

Bond strength and load-carrying capacity of GFRP rebars embedded in concrete: An experimental and analytical study. (2025). Construction and Building Materials, 479, 141512.

Flexural performance of RC beams strengthened with grid-reinforced ECC panels using the EBROG technique. (2025). Results in Engineering, 108502.

Effect of thermal load on the parametric analysis of acoustic emission signals in concrete. (2025). Proceedings of the Second International Conference on the Exchange of Scientific Information.

Prof. Dr. Feng Wang | Composite Materials | Research Excellence Award

Prof. Dr. Feng Wang | Composite Materials | Research Excellence Award

Agro-Environmental Protection Institute | Ministry of Agriculture and Rural Affairs | China

Prof. Dr. Feng Wang is an eminent environmental scientist and research leader serving as a senior researcher and Director of the Rural Environmental Governance Center at the Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, China. He is widely recognized for his pioneering contributions to the development of environmental adsorption materials, catalytic oxidation materials, and advanced strategies for the control and remediation of agricultural non-point source pollution and livestock wastewater. His extensive scientific influence is demonstrated by 1,488 citations, recorded across 1,255 citing documents, supported by 105 published scientific documents, and an h-index of 23, positioning him among the leading researchers advancing sustainable agricultural environmental protection. Prof. Wang has participated in more than thirty substantial national research initiatives, including major governmental and institutional R&D programs addressing critical environmental management challenges across rural regions and watershed systems. His innovations include the development of metal-modified biochar, quaternary ammonium-modified straw materials, modified layered double hydroxides, perovskite-based catalytic materials, and enzyme immobilization technologies, which achieve internationally competitive performance levels for the adsorption and degradation of complex pollutants. His research outcomes have directly supported major policy and strategic planning programs, including the formulation of national prevention and control plans for agricultural non-point source pollution in key river basins. As an author, he has published a large portfolio of impactful scientific papers in internationally indexed journals and co-authored eight professional books addressing aquaculture wastewater utilization, manure management, and agricultural pollution control. He holds an extensive patent portfolio with dozens of granted invention patents and successful technology transfer implementations. In addition, he is a reviewer for more than thirty international SCI journals and maintains active collaborations with leading universities and research institutions across the world. Prof. Dr. Feng Wang continues to advance innovation in environmental materials and ecological governance, making transformative contributions to sustainable agriculture and global environmental protection.

Profiles: Scopus | Orcid

Featured Publications

Design optimization of bimetal-modified biochar for enhanced phosphate removal performance in livestock wastewater using machine learning. (2025). Bioresource Technology.

The coupling model of random forest and interpretable method quantifies the response relationship between PM₂.₅ and influencing factors. (2025). Atmospheric Environment.

Superoxide radical (·O₂⁻)–driven peroxymonosulfate activation via cation-deficient lanthanum ferrite perovskite oxides: Electronic structure modulation for high-efficiency estrogen degradation in dairy wastewater. (2025). Advanced Composites and Hybrid Materials.

Efficient recovery of high-concentration phosphorus from livestock wastewater: Combined effects of magnesium-based metal–organic framework-derived metal oxide morphology and magnesium oxide vacancy species. (2025). Separation and Purification Technology.

Trichoderma brevicompactum 6311: Prevention and Control of Phytophthora capsici and Its Growth-Promoting Effect. (2025). Journal of Fungi.

Dr. Rohit Kumar Pant | Thin Film Technologies | Material Scientist Award

Dr. Rohit Kumar Pant | Thin Film Technologies | Material Scientist Award

University of Maryland | United States

Dr. Rohit Kumar Pant is a highly accomplished materials scientist whose work spans epitaxial thin films, quantum materials, superconductors, combinatorial materials science, and advanced device fabrication. He is recognized for his strong technical command of Molecular Beam Epitaxy, Pulsed Laser Deposition, Magnetron Sputtering, and a wide range of structural, electrical, and spectroscopic characterization tools, positioning him as a key contributor to both fundamental and applied research in electronic and quantum materials. His research output includes 31 scientific documents, collectively cited 559 times by 400 documents, reflecting a significant scholarly impact supported by an h-index of 15. Dr. Pant has played leading roles in developing complex quantum heterostructures, superconducting thin-film libraries, epitaxial oxide and nitride systems, and high-throughput materials platforms that accelerate discovery across thermoelectric, ferroelectric, optoelectronic, and quantum device technologies. His work includes the design and fabrication of photodetectors, Josephson junctions, resonators, and advanced prototype devices, along with major contributions to cleanroom operations, tool maintenance, and training of research personnel. He has collaborated with major academic, national laboratory, and industry partners on multidimensional projects involving machine learning–guided materials optimization, nanoscale device engineering, and the exploration of emergent electronic phases. Dr. Pant is also an active reviewer for high-impact scientific journals and has contributed to numerous invited talks, conference presentations, and mentorship initiatives. Known for his analytical rigor, problem-solving ability, and innovative approach to materials design, he continues to advance scientific understanding and technological applications within quantum information science, thin-film engineering, and next-generation electronic devices.

Profiles: Scopus | Google Scholar

Featured Publications

Liu, Y., Slautin, B., Bemis, J., Proksch, R., Pant, R., Takeuchi, I., Udovenko, S., Trolier-McKinstry, S., & Kalinin, S. V. (2025). Reward based optimization of resonance-enhanced piezoresponse spectroscopy. Applied Physics Letters, 126(4).

Oh, J. H., Nam, K., Kim, D., Lee, D., Park, J., Pant, R., Kang, M., Takeuchi, I., & Lee, S. (2025). Stoichiometry effect on the structure and phase of antiperovskite Sr₃SnO thin films prepared using combinatorial co-sputtering. Applied Physics Letters, 126(3).

Biswas, A., Vasudevan, R., Pant, R., Takeuchi, I., Funakubo, H., & Liu, Y. (2025). SANE: Strategic autonomous non-smooth exploration for multiple optima discovery in multi-modal and non-differentiable black-box functions. Digital Discovery, 4(3), 853-867.

Zheng, D. J., Iriawan, H., Pant, R., Eom, C. J., Xu, H., Peng, J., Arase, C., Takeuchi, I., & others. (2025). In situ fluorescence imaging of oxygen evolution on epitaxial perovskite films with composition gradients. ACS Catalysis, 15(11), 8776-8787.

Yoon, H., Wong, T., Pant, R., Baek, S., Saha, S. R., Zhang, X., Paglione, J., Lee, S., & others. (2025). Topological YB₆/SmB₆/YB₆ trilayer Josephson junctions. SMT.

Assoc. Prof. Dr. Kishore Debnath | Composite Materials | Editorial Board Member

Assist. Prof. Dr Kishore Debnath Mengesha | Composite Materials | Editorial Board Member

NIT Meghalaya | India

Assoc. Prof. Dr. Kishore Debnath is a highly accomplished academic and researcher in the field of mechanical engineering with distinguished expertise in composite materials, green composites, biodegradable polymers, fiber-reinforced composites, machining behavior, wear and friction of polymeric systems, and additive manufacturing. He is currently serving as an Associate Professor in the Department of Mechanical Engineering at the National Institute of Technology Meghalaya, India, where he plays a significant role in research leadership, postgraduate guidance, academic coordination, and curriculum development. With a strong educational foundation including a PhD from the Indian Institute of Technology Roorkee, an M.Tech. degree from the National Institute of Technology Rourkela, and a Bachelor of Engineering from the National Institute of Technology Agartala, he has built a remarkable academic and research career. Dr. Debnath has an impressive scholarly record with extensive publication output comprising 167 high-quality documents indexed internationally, which have collectively generated 2,042 citations from 1,687 citing documents, supported by an h-index of 25 and an i10-index of 55, demonstrating significant global research visibility and sustained scientific impact. His research interests span biodegradable materials development, fiber–matrix interface behavior, hybrid and micro-machining, advanced tool design, manufacturing process optimization, nondestructive testing of composites, and finite element analysis of manufacturing systems. He has earned multiple prestigious research awards, international recognitions, and competitive travel grants, reflecting his outstanding contributions to the advancement of mechanical sciences and materials engineering. Dr. Debnath has actively contributed to international conferences as a speaker, reviewer, and session award recipient, and has collaborated extensively within industrial and academic networks to translate research innovations into practical engineering solutions. A dedicated educator and mentor, he continues to advance cutting-edge research that promotes sustainability, manufacturing innovation, and next-generation composite technology for industrial transformation and engineering excellence.

Profile: Google Scholar

Featured Publications

Debnath, K., Singh, I., & Dvivedi, A. (2014). Drilling characteristics of sisal fiber-reinforced epoxy and polypropylene composites. Materials and Manufacturing Processes, 29(11–12), 1401–1409.

Bajpai, P. K., Debnath, K., & Singh, I. (2017). Hole making in natural fiber-reinforced polylactic acid laminates: An experimental investigation. Journal of Thermoplastic Composite Materials, 30(1), 30–46.

Debnath, K., Singh, I., & Dvivedi, A. (2015). Rotary mode ultrasonic drilling of glass fiber-reinforced epoxy laminates. Journal of Composite Materials, 49(8), 949–963.

Choudhury, M. R., Srinivas, M. S., & Debnath, K. (2018). Experimental investigations on drilling of lignocellulosic fiber reinforced composite laminates. Journal of Manufacturing Processes, 34, 51–61.

Debnath, K., & Singh, I. (2017). Low-frequency modulation-assisted drilling of carbon-epoxy composite laminates. Journal of Manufacturing Processes, 25, 262–273.

Assoc. Prof. Dr. Getinet Asrat Mengesha | Composite Materials | Editorial Board Member

Assist. Prof. Dr Getinet Asrat Mengesha | Composite Materials | Editorial Board Member

Adama Science and Technology University | Ethiopia

Assoc. Prof. Dr. Getinet Asrat Mengesha is a distinguished materials scientist and academic leader specializing in materials science and engineering, corrosion science, surface modification technologies, advanced coatings, plasma electrolytic oxidation, and metal matrix composites. He currently serves as an Associate Professor in the Department of Materials Science and Engineering at Adama Science and Technology University, Ethiopia, where he has made significant contributions to academic leadership, departmental development, postgraduate supervision, and materials innovation. His professional roles include Associate Dean of Academic Affairs for the School of Mechanical, Chemical, and Materials Engineering, Senate Standing Committee Member, Graduate and School Council Member, Program Delegate for Materials Science and Engineering, and Curriculum Committee contributor. Prior to his current role, he served as Lecturer and Department Head of Physics and later as Vice Dean of Academic Affairs of Student Services at Jigjiga University, where he provided strategic leadership, managed student academic development, and contributed to institutional growth. Dr. Getinet possesses extensive research expertise in plasma electrolytic oxidation coatings for aluminum alloys, corrosion resistance behavior of advanced engineered surfaces, and mechanical performance enhancement of hybrid-reinforced aluminum metal matrix composites, supported by several high-quality publications in internationally recognized journals. His scholarly influence demonstrates strong global research visibility, documented through 261 citations indexed by 261 citing documents, supported by an h-index of 9 and an i10-index of 9. His publication portfolio reflects impactful research collaborations addressing corrosion mitigation, metallurgical behavior, and materials durability in industrial environments. He has received recognition including Best Poster Presentation awards for research excellence and has participated in professional scientific communities dedicated to materials development and corrosion engineering. Dr. Getinet is committed to fostering innovation, interdisciplinary research leadership, and capacity building in advanced engineering education while continuing to contribute to high-performance material systems that support technological advancement and sustainable industrial solutions.

Profile: Google Scholar

Featured Publications

DAS, D. A., & Mengesha, G. A. (2022). An insight into mechanical and metallurgical behavior of hybrid reinforced aluminum metal matrix composites. Advances in Materials Science and Engineering, 2022.

Mengesha, G. A., Chu, J. P., Lou, B. S., & Lee, J. W. (2020). Corrosion performance of plasma electrolytic oxidation grown oxide coating on pure aluminum: Effect of borax concentration. Journal of Materials Research and Technology, 9(4), 8766–8779.

Mengesha, G. A., Chu, J. P., Lou, B. S., & Lee, J. W. (2020). Effects of processing parameters on the corrosion performance of plasma electrolytic oxidation grown oxide on commercially pure aluminum. Metals, 10(3), 394.

Zeleke, N. M., & Sinha, D. K. (2022). Chemical composition and extraction of microcrystalline cellulose from outer skin isolated coffee husk. Advances in Materials Science and Engineering, Article ID (13 pages).

Ashebir, D. K. S., & Mengesha, G. A. (2022). The role of tetra hybrid reinforcements on the behavior of aluminum metal matrix composites. Journal of Nanomaterials, 2022, Article ID 18.

Dr. Rodolpho Vaz | Thin Film Technologies | Editorial Board Member

Dr. Rodolpho Vaz | Thin Film Technologies | Editorial Board Member

Stony Brook University | United States

Dr. Rodolpho Fernando Vaz is a highly accomplished materials scientist and mechanical engineer recognized for his impactful research in advanced coatings, thermal spray technologies, cold spray additive manufacturing, and surface engineering solutions that address industrial challenges across energy, aerospace, oil and gas, automotive, and manufacturing sectors. With a strong foundation in metallurgy, materials performance evaluation, mechanical characterization, and wear and corrosion behavior analysis, he has established himself as a leading expert in high-performance coating technologies and the enhancement of material durability in extreme service environments. Dr. Vaz has demonstrated significant scholarly influence within the global research community, evidenced by 539 citations generated by 400 documents, with an h-index of 14 and a publication record consisting of 42 documents indexed in major scientific databases. His body of work includes high-impact publications, award-winning articles, and collaborative research outputs developed with international academic laboratories and industrial partners. He has contributed pioneering advancements in cold spray additive manufacturing, including geometric control of metallic components, novel deposition strategies, mechanical property optimization, and integration of graphene and nanomaterials into titanium and steel coatings, contributing to major technological improvements in surface protection, structural repair, and thermal barrier performance. In addition to his research achievements, Dr. Vaz has served in university teaching roles, contributed more than two thousand instructional lecture hours, supervised academic projects, and delivered keynote presentations and invited lectures in scientific congresses. He is an active member of scientific journal peer-review communities, completing more than two hundred and fifty manuscript reviews, and has served on academic evaluation committees at multiple educational levels. His professional mission emphasizes innovation, sustainability, and the development of advanced materials engineering technologies that reduce industrial costs, improve reliability, and support global transitions toward cleaner, safer, and more efficient infrastructure. Driven by scientific excellence and interdisciplinary collaboration, he continues to expand the boundaries of coating science, material performance, and engineering applications.

Profile: Scopus

Featured Publications

Effect of Additive Manufacturing Parameters on PLA, ABS, and PETG Strength. (2025). Processes. Open access.

Influence of the fuel and high-velocity spray technique on corrosion and antifouling properties of Cu coating. (2025). Journal of Thermal Spray Technology.

Cold-sprayed Ti-carbon nanofibers: Study of conductive and electrochemical properties. (2025). Journal of Thermal Spray Technology.

The critical role of liquid surface tension in determining cavitation erosion and dry wear performance of WC-17Co coatings produced by cold spray technology. (2025). Tribology International.

Assist. Prof. Dr ATUL PAWAR | Composite Materials | Editorial Board Member

Assist. Prof. Dr ATUL PAWAR | Composite Materials | Editorial Board Member

MYONGJI UNIVERSITY | South Korea

Assist. Prof. Dr. Atul Pawar is a distinguished researcher in the field of inorganic chemistry and advanced functional materials, currently serving as an Assistant Research Professor in the Department of Energy Science and Technology (DEST) at the Environmental Waste Recycle Institute (EWRI), Myongji University, South Korea. With a strong academic foundation and extensive research experience in catalytic materials, electrochemical systems, and CO₂ utilization, his work has made notable contributions to sustainable energy conversion, carbon capture and conversion, and environmental waste recycling technologies. His research spans diverse areas including electrocatalysts for electrochemical CO₂ reduction reactions, thermo-catalytic degradation of polymers for hydrocarbon fuel generation, ionic liquid-based catalysts for cyclic and linear carbonates synthesis, solar steam generation, and high-performance aerogel fabrication from plastic and cellulose waste. Dr. Pawar has published 15 high-quality scientific documents in internationally indexed journals, which have collectively received 222 citations by 218 documents, demonstrating significant global recognition of his scientific impact. His scholarly influence is further reflected in his h-index of 8, highlighting the depth and consistency of his research contributions. As a first-author and corresponding author on multiple high-impact publications in journals such as Chemical Engineering Journal, Journal of CO₂ Utilization, Environmental Pollution, and Journal of Alloys and Compounds, he has actively advanced innovative catalytic and sustainable environmental solutions. His work is widely presented through numerous oral and poster sessions at prestigious international conferences, and he has earned recognition such as the Best Poster Award from the Korean Society of Industrial and Engineering Chemistry. Dr. Pawar’s research skills include advanced synthesis of metal oxide nanoparticles, ionic liquids, metal organic frameworks, and high-precision material characterization techniques, along with strong leadership, laboratory, and analytical expertise. A dynamic and visionary scientist, he continues to drive research excellence toward cleaner energy technologies, environmental remediation, and sustainable materials engineering.

Profile: Scopus

Featured Publication

Pawar, A. A., Jabasingh, S. A., & Kassahun, S. K. (2026). Incorporation of Mg/Al metal oxide into ionic liquids for CO₂ capture and conversion into cyclic carbonate under solvent-free conditions: Effect of coordination ability, recyclability, and catalytic study. Green Chemical Engineering.