Lihe Guo | Materials Science | Best Researcher Award

Best Researcher Award

Lihe Guo — Shanghai Polytechnic University, China

Lihe Guo
Affiliation Shanghai Polytechnic University
Country China
Scopus ID 7403156720
Documents 179
Citations 3,950
h-index 37
Subject Area Materials Science
Event Global Scholar Awards

Lihe Guo is a researcher affiliated with Shanghai Polytechnic University whose documented Scopus profile records 179 documents, 3,950 citations, and an h-index of 37. The available bibliometric information places the researcher within Materials Science and provides a quantitative basis for considering research productivity, scholarly visibility, and citation impact. [1]

Abstract

Lihe Guo is a Materials Science researcher affiliated with Shanghai Polytechnic University, China. The available Scopus record identifies 179 documents, 3,950 citations, and an h-index of 37, providing measurable indicators of sustained scholarly activity and citation visibility. This article summarizes the documented research profile, publication activity, scholarly impact, and suitability for consideration under the Best Researcher Award. The assessment is based on supplied bibliometric information and publicly identifiable academic profile data rather than claims beyond the available record. Research performance is considered through productivity, citation influence, subject relevance, and evidence of continuing contribution to Materials Science research. [3]

Keywords

Materials Science, Materials Engineering, Advanced Materials, Functional Materials, Nanomaterials, Nanotechnology, Composite Materials, Materials Characterization, Materials Processing, Materials Synthesis, Materials Design, Materials Properties, Structural Materials, Electronic Materials.

Introduction

Lihe Guo’s academic profile can be examined through established bibliometric indicators that provide a concise view of scholarly productivity and influence. The supplied Scopus identification connects the researcher with a record of 179 documents and substantial citation activity. Such indicators are commonly used alongside qualitative assessment when reviewing research performance, although they do not independently determine research quality. [1] The researcher is associated with Shanghai Polytechnic University in China and the stated subject area is Materials Science.[3]

Research Profile

Lihe Guo’s research profile is situated within Materials Science and is represented by a Scopus record containing 179 documents, 3,950 citations, and an h-index of 37. These indicators suggest an established publication record with measurable citation visibility. Interpretation should consider disciplinary norms, publication chronology, authorship, and research context when evaluating scholarly performance. [1]

Research Contributions

Lihe Guo’s documented contribution is represented by sustained scholarly output in Materials Science, with the supplied record indicating 179 research documents and substantial accumulated citations. The available data support recognition of continued academic publishing and research visibility. Specific methodological or application-level contributions require verification from individual publications and therefore are not inferred beyond the supplied bibliometric evidence.[2]

Publications

Lihe Guo’s Scopus profile records 179 documents, indicating a substantial body of indexed scholarly output. The supplied information does not include a verified publication-by-publication bibliography, journal titles, publication years, article titles, or individual DOI identifiers. Consequently, publication-level conclusions are limited to the documented aggregate record, while detailed bibliographic analysis should rely on the researcher’s indexed author profile and individual publication records. [1]

Research Impact

Lihe Guo’s reported 3,950 citations and h-index of 37 provide quantitative evidence of citation activity within the indexed scholarly record. Citation counts can indicate that published research has been referenced by subsequent academic work, while the h-index reflects a combination of publication productivity and citation frequency. These indicators should complement, rather than replace, qualitative assessment. [1] [2]

Award Suitability

Lihe Guo’s reported publication volume, citation count, and h-index provide relevant evidence for consideration under a Best Researcher Award framework. The profile demonstrates measurable scholarly activity and citation visibility within Materials Science. Final award suitability should additionally consider originality, methodological contribution, publication quality, collaboration, societal or technological relevance, and the specific evaluation criteria established by the awarding organization. [1]

Conclusion

Lihe Guo’s supplied academic indicators describe an established Materials Science research profile associated with Shanghai Polytechnic University. The reported 179 documents, 3,950 citations, and h-index of 37 provide a substantial quantitative basis for academic recognition. A complete evaluation should combine these metrics with verified publication-level evidence and qualitative assessment of research originality, relevance, and contribution. [3]

References

  1. Elsevier. (n.d.). Scopus author details: Lihe Guo, Author ID 7403156720. Scopus.https://www.scopus.com/pages/authors/7403156720
  2. Gao, Y., Liu, G., Chen, S., Liu, J., Sun, X., Guo, L., Li, H., & Xu, H. (n.d.). Mechanically interlocked polyimide@cyclodextrin all-organic dielectric with enhanced high-temperature capacitive energy storage performance. https://doi.org/10.1021/acsapm.5c03161
  3. Luo, K., Wang, X., Dou, Q., Cao, P., Yang, J., Guo, L., Guo, Q., Li, S., Wang, Q., Wang, T., & Tao, L. (n.d.). Engineering of chain extender flexibility and hierarchical hydrogen bonding toward ultra-low-temperature poly(urethane-urea) elastomers with exceptional toughness. https://doi.org/10.1002/smll.202509686
  4. Global Scholar Awards. (n.d.). Global Scholar Awards official website.
    https://globalscholarawards.com/

Un-Bong Baek | Materials Science | Best Researcher Award

Best Researcher Award

Un-Bong Baek
Korea Research Institute of Standards and Science, South Korea

Un-Bong Baek
Affiliation Korea Research Institute of Standards and Science
Country South Korea
Scopus ID 22937209600
Documents
111
Citations 1,973
h-index
29
Subject Area Materials Science
Event Global Scholar Awards

Un-Bong Baek is a researcher affiliated with the Korea Research Institute of Standards and Science whose scholarly activities primarily contribute to materials science through investigations involving advanced materials, characterization methods, and measurement technologies. His publications demonstrate continued engagement with material performance evaluation and scientific standardization, supporting developments relevant to industrial applications and academic research communities.[1]

Abstract

Un-Bong Baek has established a recognized research profile through scientific investigations in materials science, emphasizing advanced material characterization, measurement science, functional materials, and analytical methodologies. His publications contribute to improving the understanding of material properties, performance evaluation, and precision measurement techniques supporting industrial innovation and scientific reliability. Through collaborations and peer-reviewed research, he has strengthened knowledge in materials engineering while promoting reproducible experimental practices and internationally recognized standards. His scholarly output reflects sustained academic productivity, interdisciplinary engagement, and contributions that support technological advancement, scientific excellence, and future developments within modern materials research communities worldwide.[1][2]

Keywords

Materials Science, Thin Films, Nanomaterials, Surface Analysis, Metrology, Material Characterization, Functional Materials, Measurement Science, Microstructure, Nanotechnology, Electronic Materials, Optical Materials

Introduction

Un-Bong Baek conducts research integrating materials science with precision measurement, emphasizing reliable characterization techniques and material performance evaluation. His studies support scientific understanding of functional materials while improving analytical accuracy for laboratory investigations and industrial technologies through internationally recognized research practices and collaborative interdisciplinary scientific activities.[1]

Research Profile

Un-Bong Baek has developed an academic profile centered on advanced materials, metrology, nanostructured materials, and precision characterization. His publications demonstrate consistent participation in internationally indexed research while supporting measurement reliability, material optimization, scientific collaboration, and knowledge dissemination across contemporary materials science disciplines.[2]

Research Contributions

Un-Bong Baek contributes through investigations of material properties, characterization methodologies, and precision analytical approaches. His scholarly work advances understanding of functional materials, experimental reproducibility, and technological applications while supporting scientific standards, innovation, and multidisciplinary materials research benefiting academic and industrial communities worldwide.[3]

Publications

Un-Bong Baek has authored and coauthored numerous peer-reviewed publications indexed within international scientific databases. His research addresses functional materials, nanotechnology, characterization methods, and precision measurements, reflecting sustained publication activity, collaborative scholarship, and continuing contributions supporting advancements across materials science research and engineering.[1]

Research Impact

Un-Bong Baek demonstrates measurable research impact through internationally indexed publications, scholarly citations, interdisciplinary collaborations, and scientific contributions supporting measurement science. His research provides valuable references for future investigations while encouraging innovation, methodological consistency, and technological improvements within materials science and related engineering disciplines.[2]

Award Suitability

Un-Bong Baek demonstrates qualifications appropriate for recognition through sustained scholarly productivity, internationally visible publications, collaborative scientific research, and contributions advancing materials science. His academic record reflects research excellence, scientific integrity, and continued commitment to innovation consistent with the objectives of the Global Scholar Awards.[4]

Conclusion

Un-Bong Baek continues contributing to materials science through research emphasizing precision measurements, advanced characterization, and functional materials. His scholarly achievements strengthen scientific knowledge, encourage collaborative innovation, and support internationally recognized research standards, making his academic contributions valuable within contemporary materials science and engineering communities.[1]

References

    1. Elsevier. (n.d.). Scopus author details: Un-Bong Baek, Author ID 22937209600.
      https://www.scopus.com/pages/authors/22937209600
    2. Google Scholar. (n.d.). Un-Bong Baek Citation Profile.
      https://scholar.google.com/citations?user=h_6ur8oAAAAJ&hl=en&oi=ao
    3. ResearchGate. (n.d.). Un-Bong Baek Research Profile.
      https://www.researchgate.net/profile/Un-Baek
    4. Global Scholar Awards. (n.d.). Best Researcher Award.
      https://globalscholarawards.com/

Ming Tang | Engineering | Innovative Research Award

Innovative Research Award

Ming Tang
University of Cincinnati, United States

Ming Tang
Affiliation University of Cincinnati
Country United States
Scopus ID 52464583400
Documents 20
Citations 129
h-index 6
Subject Area Engineering
Event Global Scholar Awards
ORCID 0000-0001-7284-856X

Ming Tang is an engineering researcher affiliated with the University of Cincinnati whose scholarly work contributes to advanced engineering research through peer-reviewed publications and interdisciplinary collaboration. His published studies demonstrate sustained engagement in engineering innovation, scientific methodology, and applied research while generating measurable scholarly visibility through citations and recognized indexing databases.[1]

Abstract

Ming Tang has established a research profile in engineering through peer-reviewed publications emphasizing advanced manufacturing, computational engineering, materials processing, design optimization, and related interdisciplinary technologies. His scholarly output demonstrates consistent scientific investigation supported by recognized indexing in Scopus and international academic visibility. Citation performance and collaborative publications indicate continuing influence within engineering research communities. The documented publication record reflects methodological rigor, practical relevance, and contributions to knowledge advancement while supporting innovation across engineering applications. These accomplishments collectively demonstrate a sustained commitment to research excellence and scholarly communication within contemporary engineering disciplines.[1][2]

Keywords

Advanced Manufacturing, Mechanical Engineering, Additive Manufacturing, Materials Engineering, Composite Materials, Finite Element Analysis, Computational Modeling, Experimental Mechanics, Simulation, Engineering Design, Mechanical Behavior, Process Optimization, Digital Manufacturing, Applied Engineering.

Introduction

Ming Tang develops engineering research addressing manufacturing technologies, computational methods, and materials engineering through interdisciplinary collaboration. His publications reflect practical scientific investigation supporting industrial innovation while contributing validated engineering knowledge. Scholarly dissemination through indexed journals strengthens international visibility and encourages continued advancement across modern engineering research communities.[2]

Research Profile

Ming Tang maintains an established publication portfolio indexed in Scopus with documented citations demonstrating scholarly engagement. His academic profile highlights engineering research, collaborative investigations, measurable citation performance, and sustained participation in peer-reviewed publishing, reflecting continuing contributions to engineering scholarship and scientific communication internationally.[1]

Research Contributions

Ming Tang contributes to engineering through investigations involving manufacturing innovation, material performance, computational analysis, and design methodologies. His research integrates theoretical understanding with practical engineering applications, encouraging reproducible scientific outcomes while supporting technological development, interdisciplinary collaboration, and continuous improvement within engineering practice.[3]

Publications

Ming Tang has produced peer-reviewed engineering publications covering manufacturing systems, advanced materials, computational engineering, and process optimization. Published articles include internationally indexed research with persistent digital object identifiers, enabling academic accessibility, reproducibility, and long-term scholarly dissemination through recognized scientific publishing platforms.[4]

Research Impact

Ming Tang demonstrates research impact through documented citations, peer-reviewed publications, international database indexing, and interdisciplinary collaboration. Citation indicators reflect recognition by fellow researchers while supporting broader engineering knowledge development and encouraging continued academic influence across evolving technological and manufacturing research domains.[1]

Award Suitability

Ming Tang demonstrates characteristics aligned with the Innovative Research Award through measurable scholarly productivity, engineering innovation, citation performance, and sustained publication activity. His documented academic achievements support recognition for research excellence while reflecting continued commitment to advancing engineering knowledge through internationally disseminated scientific investigations.[5]

Conclusion

Ming Tang continues contributing to engineering through scholarly publications, collaborative research, and measurable academic impact. His documented achievements indicate consistent scientific engagement supporting innovation, engineering advancement, and international scholarly communication, making his research profile representative of sustained academic excellence within contemporary engineering disciplines.[2]

External Links

References

  1. Elsevier. (n.d.). Scopus Author Details: Ming Tang, Author ID 52464583400. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=52464583400
  2. ORCID. (n.d.). Ming Tang ORCID Record.
    https://orcid.org/0000-0001-7284-856X
  3. ResearchGate. (n.d.). Ming Tang Research Publications.
    https://www.researchgate.net/profile/Ming-Tang-43
  4. Tang, M., et al. Representative Engineering Publication.
    https://ascelibrary.org/doi/10.1061/9780784484876.033
  5. Google Scholar. (n.d.). Ming Tang Citation Profile.
    https://scholar.google.com/citations?hl=en&user=BTE9jlgAAAAJ&view_op=list_works&sortby=pubdate

Afshana Morshed | Materials Science | Best Scholar Award

Best Scholar Award

Afshana Morshed
Researcher Afshana Morshed
Affiliation University of Wollongong
Country Australia
Scopus ID 59066134700
Documents 10
Citations 110
h-index 4
Subject Area Materials Science
Event Global Scholar Awards
ORCID 0000-0003-4465-1027

Afshana Morshed
University of Wollongong

Afshana Morshed
is a researcher affiliated with the University of Wollongong, Australia, whose scholarly activities focus on materials science. Her publications examine advanced material design, processing methods, and performance evaluation for engineering applications. Through peer-reviewed research, she has contributed to knowledge supporting sustainable material development and innovative manufacturing technologies. Her academic profile, including publications, citations, and international visibility, reflects meaningful engagement within the materials science research community.[1]

Abstract

Afshana Morshed has established a research profile centered on materials science through investigations of advanced materials, structural performance, processing technologies, and engineering applications. Her publications emphasize scientifically validated approaches that improve material properties, sustainability, and manufacturing efficiency. The available scholarly metrics indicate growing academic recognition supported by peer-reviewed publications, citations, and collaborative research activities. Her work contributes to contemporary discussions involving functional materials and engineering innovation while maintaining relevance to industrial applications. These achievements demonstrate continued participation within international materials science research and provide a strong foundation for recognition through the Best Scholar Award.[1][2]

Keywords

Materials Science, Advanced Materials, Nanomaterials, Composite Materials, Functional Materials, Microstructure, Material Characterization, Mechanical Properties, Surface Engineering, Sustainable Materials.

Introduction

Afshana Morshed investigates materials science by exploring material behavior, structural optimization, and engineering performance. Her research integrates experimental evaluation with scientific analysis to improve understanding of advanced materials while supporting sustainable technological development and practical industrial applications through peer-reviewed scholarly contributions and interdisciplinary collaboration.[2]

Research Profile

Afshana Morshed maintains an academic profile characterized by publications indexed in international databases, measurable citation performance, and collaborative research. Her investigations address material design, characterization, processing technologies, and engineering performance, reflecting sustained engagement with contemporary materials science research and scholarly dissemination.[1]

Research Contributions

Afshana Morshed contributes to materials science through studies examining advanced material systems, structural characteristics, and functional performance. Her published findings support improved understanding of engineering materials while encouraging innovation, sustainability, and scientific knowledge applicable across manufacturing, construction, and multidisciplinary technological research environments.[3]

Publications

Afshana Morshed has authored peer-reviewed publications indexed through Scopus, demonstrating consistent scholarly productivity. Her research outputs collectively investigate materials engineering, characterization techniques, and advanced material performance, contributing valuable scientific evidence supporting future investigations, industrial innovation, and continued academic collaboration internationally.[1][4]

Research Impact

Afshana Morshed demonstrates research influence through citations, publication visibility, and international indexing. Her scholarly outputs contribute to scientific understanding of materials science while supporting evidence-based engineering practices, encouraging interdisciplinary collaboration, and promoting ongoing advancement within globally recognized academic research communities.[1]

Award Suitability

Afshana Morshed demonstrates qualities appropriate for Best Scholar Award consideration through scholarly productivity, citation performance, international research visibility, and meaningful contributions to materials science. Her academic achievements reflect sustained commitment to scientific excellence, innovation, and responsible advancement of engineering knowledge internationally.[5]

Conclusion

Afshana Morshed has developed a credible academic record through peer-reviewed research, international indexing, and contributions to materials science. Her publications, measurable scholarly impact, and commitment to advancing engineering knowledge collectively support recognition within competitive academic award programs and international research communities.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Afshana Morshed, Author ID 59066134700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59066134700
  2. ORCID. (n.d.). Afshana Morshed ORCID Record.
    https://orcid.org/0000-0003-4465-1027
  3. Morshed, A., Wu, H., Ren, M., Xing, Z., Jiao, S., & Jiang, Z. (Year). A study of water-based nanolubricants using hexagonal boron nitride (hBN)-based nanocomposites as lubricant additives.
    https://doi.org/10.3390/lubricants12040123
  4. Google Scholar. (n.d.). Scholar profile of Afshana Morshed.
    https://scholar.google.com/citations?user=5Iwi4osAAAAJ&hl=en&oi=sra
  5. Global Scholar Awards. (n.d.). Best Scholar Award information.
    https://globalscholarawards.com/

Behrang Mohajer | Polymer Procesing | Research Excellence Award

Mr. Behrang Mohajer | Polymer Processing | Research Excellence Award

University of Toronto | Canada

Mr. Behrang Mohajer is a Ph.D. candidate in Microcellular Engineered Plastics at the University of Toronto, specializing in polymer processing, computational fluid dynamics (CFD), molecular dynamics, and computational mechanics. His research focuses on optimizing polymeric fiber production, simulating airflow in spunbonding processes, and developing advanced computational models for material formation and manufacturing efficiency. He has authored several publications, which have received 39 citations, and holds an h-index of 1 and an i10-index of 1, reflecting his emerging impact in the field. Collaborating extensively with interdisciplinary and international teams, Behrang integrates computational modeling with experimental validation to improve material performance and industrial productivity. His work has practical implications for sustainable manufacturing, energy-efficient polymer processing, and advanced material engineering. By bridging theory and application, Behrang contributes to smarter, more efficient, and environmentally conscious production technologies, demonstrating both technical expertise and societal impact in polymer science and computational engineering.

 

Citation Metrics (Scopus)

39
30
20
10
0

Citations

39

h-index

1

i10-index

1

Citations

h-index

i10-index

View Google Scholar Profile View ORCID Profile

Featured Publications

Shibo Li | Materials Science | Research Excellence Award

Prof. Shibo Li | Materials Science | Research Excellence Award

Professor | Beijing Jiaotong University | China

Prof. Shibo Li is a distinguished materials scientist at Beijing Jiaotong University, China, specializing in MAX phases, MXenes, advanced ceramics, and functional coatings. He has authored over 163 peer-reviewed publications, 5,203 citations with an h-index of 43, reflecting sustained, high-impact contributions to materials science. His research focuses on the synthesis–structure–property relationships of two-dimensional MXenes, carbonitride MAX phases, and ceramic-based functional materials with applications in electromagnetic wave absorption, energy storage, electronics, and thermal management. Professor Li actively collaborates with a broad international network of researchers, fostering interdisciplinary innovation across physics, chemistry, and engineering. His work has advanced scalable material synthesis and tunable functional properties, contributing to next-generation electronic devices, energy-efficient technologies, and national strategic materials development, thereby delivering significant scientific and societal impact.

Citation Metrics (Scopus)

5203
4000
2000
1000
0

Citations

5,203

Documents

163

h-index

43

Citations

Documents

h-index

View Scopus Profile
View ORCID Profile
View ResearchGate Profile

Featured Publications

Jia Jinlong | Engineering | Research Excellence Award

Assoc. Prof. Dr. Jia Jinlong | Engineering | Research Excellence Award

Head of the Mining Department | Wuhan Institute of Technology | China

Dr. Jinlong Jia is a researcher at the Lanzhou Institute of Technology, China, specializing in coal engineering, gas extraction technologies, and energy-related geomechanics with a focus on improving safety, efficiency, and sustainability in coal mining operations. With 24 scientific publications, 434 citations, and an h-index of 12, he has established a strong research profile in the fields of coal pore structure evolution, borehole optimization, and fluid–rock interactions under complex geological conditions. His recent work includes developing numerical simulation models to quantitatively evaluate effect factors in multi-branch pinnate borehole gas extraction in high-gas thick coal seams, and investigating the influence of CO₂–H₂O interaction time on coal pore morphology and water migration, published in Energy and already earning citations for its contributions to clean energy and mine safety. Dr. Jia’s research integrates computational modeling, experimental coal chemistry, and engineering applications to address critical challenges in methane extraction, gas-solid coupling mechanisms, and geological hazard prevention. Over his career, he has collaborated with more than 67 co-authors, demonstrating extensive engagement in multidisciplinary and multi-institutional research teams working across geology, mining engineering, and energy science. His findings contribute to national and global efforts toward safer mining environments, enhanced gas utilization, reduced greenhouse gas emissions, and improved resource recovery efficiency. Through advancing both theoretical understanding and practical solutions in coalbed methane extraction and pore-scale mechanisms, Dr. Jia continues to play a significant role in supporting sustainable energy development and improving engineering practices within the mining and geoscience sectors.

Profile: Scopus 

Featured Publications

Zhu, X., Jia, J., Zhang, L., Ma, Z., Qin, Z., Zhang, H., & Liu, Z. (2025). Study on the numerical simulation model for quantitative evaluation on effect factors of multi‑branch pinnate borehole gas extraction in high‑gas thick coal seams. Himalayan Geology, 46(2), 125–135.

Xu, H., Hu, J., Liu, H., Ding, H., Zhang, K., Jia, J., Fang, H., & Gou, B. (2024). Effect of the interaction time of CO₂–H₂O on the alterations of coal pore morphologies and water migration during wetting. Energy, 294, Article 130944. https://doi.org/10.1016/j.energy.2024.130944

Babu B | Manufacturing | Editorial Board Member

Mr. Babu B | Manufacturing | Editorial Board Member

  Amrita College of Engineering and Technology | India  

Professor Babu Bhaskaran of Indra Ganesan College of Engineering is a distinguished academic whose multidisciplinary research spans IoT applications, artificial intelligence, renewable energy, sustainable materials, green manufacturing, and advanced engineering systems. His extensive contributions include notable chapters such as IoT-Driven Innovations in Fruits and Vegetables Quality Monitoring, Emerging Trends in Research and Technology, The Future of Multidisciplinary Research in Global Development, A Review of Mechanical and Durability Properties of Fiber-Reinforced Concrete, Underground Water Pumping Model for Agricultural Farming, Honeybees in Agricultural Engineering, Green Manufacturing Technologies and Sustainable Product Design, Advancements in Sustainable Materials, and Climate-Smart Agriculture. His work consistently emphasizes innovation, sustainability, and practical applications, addressing global challenges related to agriculture, energy efficiency, environmental protection, and engineering optimization. Through his academic output, he focuses on developing smart IoT-based monitoring systems, promoting renewable energy adoption in agriculture, improving the performance of eco-friendly materials, and supporting climate-resilient farming practices. His publications reflect a strong commitment to advancing engineering research while ensuring societal benefit. With a growing portfolio of impactful work, Professor Bhaskaran continues to contribute significantly to interdisciplinary research, shaping the future of sustainable engineering and strengthening global efforts toward environmental resilience and technological advancement.

Profiles: ResearchGate 

Featured Publications

1. IOT-Driven Innovations in Fruits and Vegetables Quality Monitoring: From Sensors to Edge AI Bhaskaran, B., Vanisri, K., Sumathra, S., & Ramanarayanan, N. (2025, November). IOT-driven innovations in fruits and vegetables quality monitoring: From sensors to edge AI. In [Edited Volume Title Not Provided] (Chapter).

2. Emerging Trends in Research and Technology: Modern Materials and Manufacturing (Chapter 11) Bhaskaran, B., Vanisri, K., & Sumathra, S. (2025, September). Modern materials and manufacturing. In Emerging trends in research and technology (Chapter 11).

3. The Future of Multidisciplinary Research in Global Development: The Role of Renewable Energy in Agricultural Engineering Bhaskaran, B. (2025, September). The role of renewable energy in agricultural engineering: Opportunities and challenges. In The future of multidisciplinary research in global development (Chapter).

4. A Review of Mechanical and Durability Properties of Fiber-Reinforced Concrete (Chapter 6) Bhaskaran, B., Vanisri, K., Mukesh, M., & Ramanarayanan, N. (2025, September). A review of mechanical and durability properties of fiber-reinforced concrete. In [Book Title Not Provided] (Chapter 6).

 

Nikolai Kargin | Semiconductor Materials | Best Researcher Award

Prof. Dr. Nikolai Kargin | Semiconductor Materials | Best Researcher Award

Rector Office Counselor, Professor | National Research Nuclear University MEPhI | Russia

Nikolai I. Kargin is a distinguished researcher with extensive expertise in electronic processes in microwave devices, quantum-well heterostructures, and high-heterostructure device development. His scientific contributions encompass the physics and technology of quantum-well heterostructures, micro- and nanotechnology for short-channel microwave devices, and the design, calculation, and simulation of heterostructure unipolar and bipolar microwave devices operating at frequencies up to 250 GHz and beyond. Kargin has played a pivotal role in advancing heterostructure monolithic microwave integrated circuits (MMICs) and devices for broadband wireless communication systems, fiber-optic networks, airborne radars, and high-sensitivity radiometers, as well as energy-efficient devices based on wide-gap materials. With over 230 publications—including a monograph, 230 articles and abstracts, 15 scientific and methodological works, and nine patents—Kargin’s research has had significant impact across academia and industry. His work is characterized by interdisciplinary collaboration, bringing together teams in electronics, spintronics, photonics, and nanotechnology, and fostering innovations that address both fundamental scientific challenges and applied technological needs. He has contributed to numerous high-impact projects that enhance communication technologies, radar systems, and energy-efficient electronic devices, reflecting a strong societal and technological influence. Throughout his career, Kargin has held leadership roles such as Vice-Rector of the National Research Nuclear University MEPhI, Director of the Institute of Nanotechnologies in Electronics, Spintronics and Photonics, and head of advanced research departments, emphasizing his ability to guide research initiatives and mentor scientific teams. His work exemplifies excellence in integrating theoretical insights with practical device engineering, establishing him as a globally recognized authority in microwave electronics and heterostructure technologies.

Profile: Scopus 

Featured Publications

  1. Kargin, N. I., et al. (2025). Evidence of isospin-symmetry violation in high-energy collisions of atomic nuclei. Nature Communications.

  2. Kargin, N. I., et al. (2025). Iridescence and luminescence from opal matrices for show business. Photonics.

  3. Kargin, N. I., et al. (2025). Raman spectroscopy of multilayer graphene structures with various twist angles between layers. Journal of Applied Spectroscopy.

  4. Kargin, N. I., et al. (2025). Development of a correlator for measuring the second-order autocorrelation function of single photon sources. Russian Microelectronics.

  5. Kargin, N. I., et al. (2025). Single NV centers in diamond produced by multipulse femtosecond laser irradiation. Diamond and Related Materials.


Kargin’s research bridges fundamental physics and advanced device engineering, driving innovation in quantum technologies, high-frequency electronics, and nanomaterials. His work contributes to scientific knowledge, industrial applications in communication and sensing systems, and global advancements in photonics and nuclear research.

Cyrille Richard | Materials Science | Best Scholar Award

Dr. Cyrille Richard | Materials Science | Best Scholar Award

Research Director | CNRS | France

Dr. Cyrille Richard, 53, is a distinguished Directeur de recherche at the Unité de Technologies Chimiques et Biologiques pour la Santé (UTCBS), Faculté de Pharmacie, Paris. He earned his Doctorate in Organic Chemistry from Université Paris XI-Orsay in 2000, following a DEA in 1996, both with highest honors, and obtained his Habilitation à diriger des recherches from Université Paris Descartes in 2015. Dr. Richard’s professional trajectory includes postdoctoral research at Pittsburgh, USA, and Aventis Pharma, as well as CNRS appointments from Chargé de recherches 2ᵉ classe to Directeur de recherche 2ᵉ classe since 2018. His work focuses on organic chemistry, nanoparticle synthesis, surface functionalization, and the development of chemical probes for in vivo imaging, therapy, and in vitro diagnostics, with expertise in optical imaging, nanoparticle biodistribution, and ELISA-based diagnostics. Over 2018–2025, he led major projects, including national ANR grants (PLEaSe, Stric-on) and international collaborations (FET Open, CSC), supervising 4 PhD students, 3 postdocs, and 15 master’s students, attracting international talent from China, India, Brazil, Ecuador, Egypt, and Canada. He has filed a patent (WO 2024/061937 A1) and published 35 high-impact articles (7 with IF >10), 2 book chapters, amassing 8,840 citations with an H-index of 42. His research is highly collaborative, with national, industrial, and international partnerships, and he actively contributes to scientific governance, serving on 11 doctoral juries, 6 master juries, and numerous project and manuscript review committees for journals such as Nature Nanotechnology, ACS Nano, and Angewandte Chemie. He has been invited to present at eight international conferences and participates in strategic initiatives, including the CNRS laboratory council and the Institut de Chimie Biologique steering committee. Dr. Richard’s contributions have been recognized through awards such as a “Best Paper Prize” and an individual CNRS prime (2024–2027), reflecting his leadership in chemical biology, nanomedicine, and translational research that bridges innovation, diagnostics, and therapeutic applications.

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

Featured Publications

  • Maldiney, T., Bessière, A., Seguin, J., Teston, E., Sharma, S. K., Viana, B., Bos, A. J. J., … (2014). The in vivo activation of persistent nanophosphors for optical imaging of vascularization, tumours and grafted cells. Nature Materials, 13(4), 418–426. Cited by 1104

  • Richard, C., Balavoine, F., Schultz, P., Ebbesen, T. W., & Mioskowski, C. (2003). Supramolecular self-assembly of lipid derivatives on carbon nanotubes. Science, 300(5620), 775–778. Cited by 1000

  • Balavoine, F., Schultz, P., Richard, C., Mallouh, V., Ebbesen, T. W., … (1999). Helical crystallization of proteins on carbon nanotubes: A first step towards the development of new biosensors. Angewandte Chemie International Edition, 38(13-14), 1912–1915. Cited by 697

  • Maldiney, T., Lecointre, A., Viana, B., Bessière, A., Bessodes, M., Gourier, D., … (2011). Controlling electron trap depth to enhance optical properties of persistent luminescence nanoparticles for in vivo imaging. Journal of the American Chemical Society, 133(30), 11810–11815. Cited by 433

  • Bessière, A., Sharma, S. K., Basavaraju, N., Priolkar, K. R., Binet, L., Viana, B., … (2014). Storage of visible light for long-lasting phosphorescence in chromium-doped zinc gallate. Chemistry of Materials, 26(3), 1365–1373. Cited by 412