Ayrat Dimiev | Material Science | Best Researcher Award

Global Scientist Day Awards

Ayrat Dimiev — Kazan Federal University, Russia

Ayrat Dimiev
Affiliation Kazan Federal University
Country Russia
Scopus ID 26531032800
Documents 97
Citations 8,925
h-index 31
Subject Area Material Science
Event Global Scientist Day Awards
ORCID 0000-0001-7497-1211

Ayrat Dimiev is a researcher affiliated with Kazan Federal University in Russia whose scholarly profile is associated with the field of material science. The supplied bibliometric record identifies 97 documents, 8,925 citations, and an h-index of 31 in Scopus, indicating a substantial body of indexed scholarly output and citation activity.[1] His ORCID identifier provides a persistent digital identifier for distinguishing his scholarly record from researchers with similar names.[2]

Abstract

This academic recognition profile presents the supplied scholarly information for Ayrat Dimiev of Kazan Federal University, Russia, in connection with the Global Scientist Day Awards.The Global Scientist Day Awards provides an academic recognition context in which researchers may be considered according to their scholarly records, research contributions, professional profile, and broader impact.[3]

Introduction

Material science is an interdisciplinary research field concerned with the relationships among material composition, structure, properties, processing, and performance. Research within this broad area can contribute to the development and understanding of materials used across scientific and technological applications. Within this context, researcher-level bibliometric information can provide one means of describing scholarly productivity and citation visibility.

Research Profile

The research profile supplied for Ayrat Dimiev is centered on material science and is institutionally associated with Kazan Federal University. The profile records a Scopus Author ID of 26531032800 and an ORCID identifier of 0000-0001-7497-1211.These identifiers support the organization and discovery of scholarly records across research information systems.[1] [2]

Research Contributions

The supplied bibliometric record indicates a substantial indexed publication history, represented by 97 documents and 8,925 citations.In an academic recognition context, these indicators can be considered alongside the subject area, institutional affiliation, publication quality, research originality, collaboration, and relevance of individual contributions.[1]

Publications

The supplied Scopus information reports 97 documents associated with the researcher’s author profile.For authoritative bibliographic verification, readers should consult the researcher’s Scopus author profile and ORCID record. These sources can be used to distinguish publications associated with the researcher and to identify persistent scholarly records.[1] [2]

Research Impact

Citation-based indicators provide a quantitative perspective on the visibility of scholarly publications. The supplied record reports 8,925 citations and an h-index of 31 for Ayrat Dimiev in Scopus. The h-index is commonly used as an indicator combining publication output and citation performance, although bibliometric indicators vary across databases, disciplines, career stages, publication practices, and time periods.[1]

Award Suitability

Based on the supplied information, Ayrat Dimiev presents a research profile that is relevant to an academic recognition framework focused on scientific achievement. The documented affiliation with Kazan Federal University, specialization in material science, 97 Scopus-indexed documents, 8,925 citations, and h-index of 31 provide measurable indicators of scholarly activity and visibility.[1]

Conclusion

Ayrat Dimiev’s supplied academic profile reflects an established scholarly record in material science associated with Kazan Federal University, Russia. The reported Scopus indicators of 97 documents, 8,925 citations, and an h-index of 31 provide measurable evidence of publication activity and citation visibility.[2][1]

References

  1. Elsevier (2026.). Scopus author details: Ayrat Dimiev, Author ID 26531032800. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=26531032800
  2. The three-component carbon support for platinum electrocatalysts with enhanced stability.
    https://www.sciencedirect.com/science/article/abs/pii/S0925963526002013
  3. Global Scientist Day Awards (2026). Official award website and event information.
    https://scientistday.org/

Byung Joon Choi | Material Science | Best Researcher Award

Best Researcher Award

Byung Joon Choi
Affiliation Seoul National University of Science and Technology
Country South Korea
Scopus ID 35182588700
Documents 151
Citations 6,381
h-index 34
Subject Area Material Science
Event Global Scientist Day Awards
ORCID 0000-0001-5154-6079

Byung Joon Choi

Institution: Seoul National University of Science and Technology

BYUNG JOON CHOI is a researcher affiliated with Seoul National University of Science and Technology, South Korea. His scholarly work focuses on advanced manufacturing technologies for refractory alloys and related materials engineering disciplines. Through an extensive publication record, substantial citation impact, and sustained research activity indexed in Scopus, he has contributed to developments in advanced manufacturing, materials processing, and engineering innovation.[1]

Abstract

This article presents an academic overview of BYUNG JOON CHOI, emphasizing measurable scholarly achievements, research specialization, publication productivity, and scientific influence. His research activities have primarily focused on advanced manufacturing of refractory alloys and associated engineering processes, contributing to the understanding of materials performance, processing optimization, and industrial applications. The assessment is based on publicly available scholarly metrics and recognized academic sources.[1]

Keywords

Advanced Manufacturing, Refractory Alloys, Materials Engineering, High-Temperature Materials, Manufacturing Science, Surface Engineering, Mechanical Engineering, Alloy Processing, Materials Characterization, Scientific Research.

Introduction

Research in advanced manufacturing has become increasingly important for improving the durability, efficiency, and sustainability of engineering materials used in demanding industrial environments. Refractory alloys are critical components in aerospace, energy systems, transportation, and high-temperature manufacturing due to their exceptional mechanical and thermal properties. Researchers in this domain develop innovative processing methods that enhance material reliability and industrial performance.[2]

Research Profile

According to indexed scholarly records, BYUNG JOON CHOI has authored 151 Scopus-indexed publications, accumulated 6,381 citations, and achieved an h-index of 34. These indicators demonstrate sustained scientific productivity and the broad academic visibility of his research contributions over multiple years.[1]

Research Contributions

His research has addressed manufacturing methodologies, processing optimization, mechanical behavior, and microstructural evolution of advanced alloys intended for demanding engineering applications. Published studies have supported improvements in manufacturing reliability, materials characterization, and engineering performance while advancing understanding of refractory alloy systems.[2]

Publications

The author’s scholarly portfolio consists of peer-reviewed journal articles indexed in major scientific databases. Publications span manufacturing engineering, materials science, metallurgy, and advanced alloy processing, reflecting interdisciplinary collaboration and sustained academic productivity.[1]

Research Impact

An h-index of 34 and more than 6,381 citations indicate that numerous publications have received consistent scholarly attention from the international research community. These quantitative indicators reflect meaningful scientific influence within materials engineering and advanced manufacturing research.[1]

Award Suitability

Based on publicly available academic indicators, BYUNG JOON CHOI demonstrates characteristics commonly associated with recognition through research excellence awards, including sustained publication output, measurable citation impact, and specialized contributions to advanced manufacturing of refractory alloys. These achievements provide evidence of an established scholarly profile suitable for consideration within international academic recognition programs such as the Global Scientist Day Awards.[1]

Conclusion

BYUNG JOON CHOI has developed a significant academic record characterized by extensive publications, notable citation performance, and sustained research activity in advanced manufacturing and refractory alloy engineering. His scholarly contributions continue to support scientific advancement within materials science and manufacturing engineering while demonstrating measurable international academic impact.[1]

References

  1. Elsevier. (2026). Scopus author details: BYUNG JOON CHOI, Author ID 35182588700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=35182588700
  2. DOI Foundation. (2026). Digital Object Identifier reference for materials characterization research.
    https://doi.org/10.1016/j.matchar.2019.109873
  3. Global Scientist Day Awards. (2026). International Academic Recognition Platform.
    https://scientistday.org/

Eleni Efthimiadou | Material Science | Best Researcher Award

Prof. Dr. Eleni Efthimiadou | Material Science | Best Researcher Award

National and Kapodistrian University of Athens | Greece

Eleni K. Efthimiadou is a distinguished academic and researcher in the field of Inorganic and Bioinorganic Chemistry, with a strong interdisciplinary focus on nanotechnology, nanomedicine, and advanced biomedical applications. She serves as a faculty member in the Laboratory of Inorganic Chemistry at the Department of Chemistry of the National and Kapodistrian University of Athens, where her work bridges fundamental chemistry with translational biomedical research. Her scientific expertise centers on the design, synthesis, surface modification, and physicochemical characterization of inorganic, organic, and hybrid nanomaterials with targeted biological functionality. A core aspect of her research is the development of multifunctional nanostructures—such as magnetic nanoparticles, gold and silver nanostructures, quantum dots, liposomal systems, and hybrid nanocomposites—for diagnostic, therapeutic, and theranostic applications. These systems are extensively evaluated through in vitro and in vivo biological models, addressing critical challenges in cancer diagnosis and treatment, inflammation-related diseases, antimicrobial resistance, and energy-related applications. She has extensive experience in advanced spectroscopic, microscopic, thermal, and magnetic characterization techniques, as well as in biological evaluation methodologies including cytotoxicity, oxidative stress, DNA interaction, apoptosis, angiogenesis inhibition, hyperthermia, and antimicrobial testing. Her in vivo research expertise includes biodistribution, biocompatibility, and therapeutic efficacy studies in established animal models, with full accreditation for laboratory animal research.Eleni K. Efthimiadou has made a substantial contribution to graduate and postgraduate education, having supervised a large number of undergraduate theses, master’s dissertations, and doctoral dissertations, many of which focus on cutting-edge nanochemical and biomedical research topics. She has also actively participated in doctoral and postgraduate examination committees in Greece and abroad. Her scholarly output includes a high volume of peer-reviewed publications in internationally recognized journals, with strong citation metrics reflecting significant scientific impact. Through her combined roles as researcher, educator, and mentor, she continues to advance the fields of bioinorganic chemistry and nanomedicine while fostering the next generation of scientists.

Citation Metrics (Google Scholar)

5000
4000
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2000
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0

Citations
4927

h-index
37

i10-index
74

Citations

h-index

i10-index



View Google Scholar Profile

Featured Publications

Mahesh Kumar Sah | Material Science | Best Researcher Award

Dr. Mahesh Kumar Sah | Material Science | Best Researcher Award 

Dr. Mahesh Kumar Sah | Meerut Institute of Engineering and Technology | India

Dr. Mahesh Kumar Sah is a dedicated mechanical engineering professional with robust expertise in nano-finishing, surface engineering, composite materials, coating technology, image analysis, and design of experiments. With a Ph.D. from SRM Institute of Science and Technology, he brings a strong blend of academic, research, and industrial-oriented experience. His technical proficiency spans AutoCAD, SolidWorks, MATLAB, Origin, Minitab, and MS Office, enabling him to execute high-precision research and engineering tasks effectively. Dr. Sah has over six years of academic experience as an Assistant Professor at Siddartha Institute of Science and Technology, AP, where he handled a wide range of subjects including Engineering Mechanics, CAD/CAM, Robotics, Thermal Engineering, Manufacturing Technology, and Metrology. He also supervised laboratories, coordinated academic programs, and managed responsibilities related to seminars, projects, NBA/NAAC documentation, and student administration. Currently, he serves as a Project Associate-II at NIT Jalandhar, contributing to advanced mechanical engineering research. His research contributions include multiple SCI-indexed publications in reputable journals such as Materials and Manufacturing Processes, Canadian Metallurgical Quarterly, and Journal of Materials Engineering and Performance. His work primarily focuses on CNC abrasive finishing, reflective polishing, nano-finishing processes, and optical characterization of materials. He has also authored book chapters and reviewed research manuscripts for leading journals. Dr. Sah is the co-inventor of a filed patent titled “A System for Mirror-Like Reflective Surface Finishing on Metallic Cylindrical Workpiece” and has presented his research at several national and international conferences. He has completed NPTEL and FDP courses in surface engineering, machine learning, sustainability, nanotechnology, and entrepreneurship. Recognized with the Dr. APJ Abdul Kalam Research Award, Dr. Sah is a motivated researcher and educator committed to advancing mechanical engineering, fostering innovation, and contributing meaningfully to academia and industry.

Profile: Scopus | Orcid | Google Scholar | LinkedIn | Research Gate

Featured Publications

Sah, M. K., Vijaya, A., & Singh, H. (2025). Nanofinishing of aluminum sheet using CNC fixed abrasive lapping. Journal of Materials Engineering and Performance. https://doi.org/10.1007/s11665-025-10886-3

Sah, M. K., Vijaya, A., & Singh, H. (2025). A novel CNC abrasive finishing process of aluminium pipe for industrial applications. Canadian Metallurgical Quarterly. https://doi.org/10.1080/00084433.2025.2582355

Sah, M. K., Vijaya, A., & Singh, H. (2025). Experimental study of the surface finishing of CNC magnetic abrasive finishing based on ANN. Canadian Metallurgical Quarterly. https://doi.org/10.1080/00084433.2024.2415726

Sah, M. K., & Vijaya, A. (2024). Optimizing highly reflective CNC abrasive polishing on aluminum sheets. Materials and Manufacturing Processes. https://doi.org/10.1080/10426914.2024.2304867

Sah, M. K., & Vijaya, A. (2023). Experimental studies on reflective finishing of aluminum sheet by CNC abrasive lapping. Materials and Manufacturing Processes. https://doi.org/10.1080/10426914.2023.2244034

Xiping Chen | Material Science | Best Researcher Award

Prof. Dr. Xiping Chen | Material Science | Best Researcher Award

Prof. Dr. Xiping Chen |  Zhengzhou University | China

Dr. Chen Xiping, Professor and Doctoral Supervisor at Zhengzhou University, is a distinguished expert in molten salt chemistry and the comprehensive utilization of nonferrous metal resources. She has made pioneering contributions to green metallurgy, environmental protection, and the sustainable recycling of industrial byproducts. With extensive leadership experience in academia, industry, and national committees, she plays a vital role in advancing innovative technologies and setting industry standards that promote cleaner, more efficient metallurgical practices.

Academic Profile 

scopus