Mostafa Belal | Green Technology | Innovative Research Award

Innovative Research Award

Mostafa Belal — Sohag University, Egypt

Mostafa Belal
Affiliation Sohag University
Country Egypt
Scopus ID 57994645800
Documents 4
Citations 95
h-index 3
Subject Area Green Technology
Event Technology Scientists Awards
ORCID 0009-0007-4235-2273

Mostafa Belal is affiliated with Sohag University, Egypt, with research activity in green technology and materials protection. His documented publications address corrosion-resistant polybenzoxazine coatings, surface activation of wood-plastic composites, and protective formulations for mild steel. These works connect materials engineering with durability and environmental considerations in applied research applications. [1][2][3]

Abstract

Mostafa Belal, affiliated with Sohag University in Egypt, conducts research within green technology with emphasis on protective materials and surface engineering. His documented studies examine polybenzoxazine coating precursors, corrosion-resistant formulations, wood-plastic composite surface activation, epoxy adhesion, and protective performance for mild steel. The research combines material synthesis, characterization, surface modification, and corrosion mitigation. These themes indicate an applied approach to developing functional coating systems and improving material durability. The publication record provides a basis for recognizing contributions to materials protection and sustainable engineering applications. This profile summarizes documented themes, publications, impact, and suitability for innovative recognition. [1][2][3] This profile is presented here.

Keywords

Green technology; polybenzoxazine; corrosion protection; protective coatings; surface engineering; wood-plastic composites; epoxy adhesion; mild steel; corrosion inhibition; polymeric materials; material characterization; surface modification; functional coatings; sustainable materials; materials protection. [1][2][3]

Introduction

Mostafa Belal is affiliated with Sohag University, Egypt, with research activity in green technology and materials protection. His documented publications address corrosion-resistant polybenzoxazine coatings, surface activation of wood-plastic composites, and protective formulations for mild steel. These works connect materials engineering with durability and environmental considerations in applied research applications. [1][2][3]

Research Profile

Belal’s research profile centers on materials and surface engineering within green technology. His publications indicate emphasis on polymeric coating systems, adhesion enhancement, corrosion inhibition, and protective performance. Collectively, these topics reflect an applied research approach focused on improving material durability through engineered surface treatments and functional precursor design research overall. [1][2][3]

Research Contributions

The reported contributions involve developing polybenzoxazine-based materials for corrosion protection, designing coating precursors with enhanced performance, and activating wood-plastic composite surfaces to improve epoxy adhesion. The studies also examine protective efficiency toward mild steel, connecting material synthesis, surface modification, coating performance, and corrosion mitigation in applied materials research settings today. [1][2][3]

Publications

Belal’s publications address aspects of material protection research. One study reports a novel polybenzoxazine coating precursor designed through monomer engineering for anti-corrosion performance. Another investigates surface activation of wood-plastic composites for improved epoxy adhesion, while a third examines synthesis, characterization, and protective efficiency of a polybenzoxazine precursor for mild steel. [1][2][3]

Research Impact

The research has clear practical relevance to durable coating systems, corrosion management, and improved adhesion of protective layers on engineered materials. By addressing material protection and surface functionality, the studies contribute knowledge applicable to extending service life and improving coating performance. Their significance is demonstrated through documented research topics overall. [1][2][3]

Award Suitability

The documented research aligns with an Innovative Research Award focused on materials and green technology because it combines material synthesis, surface modification, characterization, and corrosion protection. The publications demonstrate a coherent research direction and practical orientation. Award consideration can be based on originality, technical scope, and relevance of the work. [1][2][3]

Conclusion

Mostafa Belal’s documented work presents a focused research direction in green technology, particularly protective coatings, surface treatment, adhesion, and corrosion inhibition. The cited studies provide evidence of investigation into functional materials and their applications. Together, they establish a research profile connecting material innovation with practical challenges in durability and protection. [1][2][3]

References

  1. Aly, K. I., Amer, A. A., Mahross, M. H., Belal, M. R., Soliman, A. M. M., & Mohamed, M. G. (2023). Construction of novel polybenzoxazine coating precursor exhibiting excellent anti-corrosion performance through monomer design. Heliyon, 9(5), e15976.
    https://doi.org/10.1016/j.heliyon.2023.e15976
  2. Belal, M. R., Naguib, H. M., El-Ghazawy, R. A., Shaker, N. O., Amer, A. A., Soliman, A. M. M., & Kandil, U. F. (2019). Surface activation of wood plastic composites (WPC) for enhanced adhesion with epoxy coating. Materials Performance and Characterization, 8(1), 22–40.
    https://doi.org/10.1520/MPC20180034
  3. Soliman, A. M. M., Aly, K. I., Mohamed, M. G., Amer, A. A., Belal, M. R., & others. (2023). Synthesis, characterization and protective efficiency of novel polybenzoxazine precursor as an anticorrosive coating for mild steel. Scientific Reports, 13, 5581.
    https://doi.org/10.1038/s41598-023-30364-x
  4. Elsevier. (n.d.). Scopus author details: Mostafa Belal, Author ID 57994645800. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57994645800

Sunil Kumar Khare | Green Technology | Outstanding Scientist Award

Outstanding Scientist Award

Sunil Kumar Khare
University of Petroleum and Energy Studies, India

Sunil Kumar Khare
Affiliation University of Petroleum and Energy Studies
Country India
Scopus ID 26324209600
Documents 18
Citations 214
h-index 7
Subject Area Green Technology
Event Technology Scientists Awards
ORCID 0000-0001-5041-3012

Sunil Kumar Khare is a researcher affiliated with the University of Petroleum and Energy Studies in India whose scholarly profile encompasses green technology and data-driven engineering research. His documented work includes applications of analytics, regression modelling, pipeline network optimization, and geochemical interpretation, demonstrating an interdisciplinary orientation toward technology-enabled scientific problem solving. [1] [2] [3]

Abstract

Sunil Kumar Khare is a researcher at the University of Petroleum and Energy Studies, India, working within the broad domain of Green Technology. His scholarly record includes research involving data analytics, regression modelling, engineering optimization, and geochemical analysis. His publications demonstrate applications of computational methods to energy and geological problems, including geothermal drilling, pipeline configuration, and igneous-province characterization. These studies illustrate an interdisciplinary research profile connecting analytical techniques with practical engineering and environmental contexts. His documented scholarly output and citation record provide evidence of sustained research engagement and academic visibility. [1] [2] [3]

Keywords

Green Technology; Data Analytics; Regression Modelling; Geothermal Wells; Drilling Engineering; Pipeline Network Optimization; Sensitivity Analysis; Geochemistry; Petrogenetics; Igneous Provinces; Energy Technology; Engineering Analytics.

Introduction

Green Technology increasingly depends on analytical methods capable of improving resource efficiency, engineering decisions, and environmental understanding. Khare’s research reflects this interdisciplinary direction through studies applying data analytics to geothermal drilling, optimization to pipeline networks, and analytical methods to geological characterization, connecting computational approaches with energy and Earth-science applications. [1] [2] [3]

Research Profile

Khare’s research profile combines engineering analytics, optimization, and geoscientific investigation. His documented publications address prediction of drilling performance, multi-product pipeline configuration, and data-supported interpretation of geochemical and petrogenetic characteristics. Together, these themes indicate a research orientation toward quantitative methods that support complex energy, infrastructure, and geological systems across applied scientific contexts. [1] [2] [3]

Research Contributions

The documented research contributes analytical perspectives to energy and geological engineering problems. Regression modelling is applied to geothermal drilling-rate prediction, optimization frameworks examine pipeline configuration and objective-function sensitivity, while data analytics supports geochemical and petrogenetic interpretation. These contributions demonstrate the practical use of quantitative approaches for complex, multidisciplinary technological investigations. [1] [2] [3]

Publications

Khare’s documented publications cover three complementary areas: predictive analytics for geothermal drilling, optimization of multi-product pipeline networks, and data analytics for geochemical and petrogenetic investigation. These works illustrate the application of quantitative and computational techniques to engineering and Earth-science questions, with relevance to energy systems and technology-oriented research. [1] [2] [3]

Research Impact

The research demonstrates potential practical relevance across geothermal energy, pipeline infrastructure, and geological interpretation. Predictive modelling can support drilling analysis, optimization can inform network configuration decisions, and geochemical analytics can strengthen interpretation of complex geological datasets. The combined portfolio reflects technology-oriented research addressing diverse analytical challenges within energy-related domains. [1] [2] [3]

Award Suitability

Khare’s documented research aligns with the broad objectives of scientific recognition in technology-oriented disciplines. His work combines analytical modelling, engineering optimization, and geoscientific data analysis, while addressing energy and infrastructure applications. The breadth of these themes provides a reasonable basis for consideration under an Outstanding Scientist Award focused on applied technological research. [1] [2] [3]

Conclusion

Sunil Kumar Khare presents a multidisciplinary research profile spanning green technology, energy engineering, optimization, predictive analytics, and geoscience. His documented publications demonstrate the application of quantitative approaches to practical scientific problems. The combination of engineering and Earth-science research provides a substantive foundation for consideration for technology-focused scientific recognition. [1] [2] [3]

References

  1. Khare, S. K., et al. (2025). Data analytics and regression modelling for drilling rate of penetration prediction of geothermal wells. In Advances in Energy and Environmental Engineering. Springer.
    https://doi.org/10.1007/978-981-96-3667-9_11
  2. Khare, S. K., et al. (2024). Optimizing multi-product pipeline network configuration design: A comprehensive framework with objective function sensitivity analysis. Scopus. Publication record: 85184306294.
    https://www.scopus.com/pages/publications/85184306294
  3. Khare, S. K., et al. (2024). Data analytics for geochemical and petrogenetic study of an igneous province: A case study on Andean andesite, South America. Journal of Earth System Science.
    https://doi.org/10.1007/s12040-024-02399-9
  4. Elsevier. (n.d.). Scopus author details: Sunil Kumar Khare, Author ID 26324209600. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=26324209600
  5. ORCID. (n.d.). Sunil Kumar Khare: ORCID record. ORCID.
    https://orcid.org/0000-0001-5041-3012

Wentao Shang | Green Technology | Best Researcher Award

Best Researcher Award

Wentao Shang
Affiliation Jinan University
Country China
Scopus ID 57604364900
Documents 34
Citations 812
h-index 15
Subject Area Green Technology
Event Technology Scientists Awards
ORCID 0000-0002-5168-7696

Wentao Shang is affiliated with Jinan University, China, and works across membrane science, separation technologies, computational prediction, imaging, and advanced materials. His recent scholarly record includes research on membrane distillation, nanofiltration fouling prediction, and supramolecular materials, providing a multidisciplinary basis for consideration within the field of green technology. [1] [2] [3]

Abstract

Wentao Shang is a researcher at Jinan University whose documented work connects membrane science, green technology, computational modeling, imaging, and advanced materials. His recent publications examine surface patterning for membrane distillation, multimodal convolutional neural networks for dynamic nanofiltration fouling prediction, and solution-sheared supramolecular oligomers with improved thermal-resistant adhesion. These studies demonstrate an interdisciplinary approach combining materials engineering, separation processes, experimental characterization, and data-driven analysis. With 34 documented publications, 812 citations, and an h-index of 15, his profile indicates sustained scholarly activity and measurable research visibility. The breadth and environmental relevance of these themes support consideration for a Best Researcher Award.

Keywords

Keywords: Green Technology, Membrane Distillation, Nanofiltration, Membrane Fouling, Optical Coherence Tomography, Convolutional Neural Networks, Surface Patterning, Advanced Materials, Supramolecular Oligomers, Sustainable Engineering.

Introduction

Wentao Shang’s research profile at Jinan University reflects an interdisciplinary focus connecting membrane processes, nanofiltration, imaging-based analysis, advanced materials, and sustainable engineering. His recent publications address membrane distillation, fouling prediction, and thermally resistant supramolecular materials, indicating a research trajectory relevant to emerging green technology and resource-efficient engineering. [1] [2] [3]

Research Profile

Shang is associated with research spanning membrane science, separation technologies, computational prediction, and functional materials. His publication record includes studies using surface patterning to improve membrane distillation and multimodal convolutional neural networks to model nanofiltration fouling. These themes connect experimental characterization, materials engineering, and data-driven methods for environmental applications. [1] [2]

Research Contributions

Shang’s contributions can be viewed through three complementary areas: engineering membrane surfaces for improved separation performance, applying in-situ optical coherence tomography and multimodal neural networks to characterize fouling dynamics, and investigating supramolecular materials with enhanced thermal and adhesive properties. Together, these studies demonstrate integration of experimental methods, computational analysis, and materials design. [1] [2] [3]

Publications

The documented publications associated with Shang include a 2026 review of surface patterning in membrane distillation, a 2026 Desalination article on multimodal convolutional neural networks for nanofiltration fouling prediction, and a Nature Communications study on solution-sheared supramolecular oligomers. The works collectively cover membrane engineering, machine learning, imaging, adhesion, and advanced materials. [1] [2] [3]

Research Impact

The research has potential relevance to green technology through improved membrane efficiency, fouling management, and durable functional materials. Surface-engineered membranes may support cleaner separation processes, while predictive imaging models can improve understanding of fouling development. Work on thermally resistant adhesives further broadens the profile toward resource-conscious and performance-oriented materials engineering. [1] [2] [3]

Award Suitability

The Best Researcher Award profile is supported by a combination of publication activity, citation indicators, interdisciplinary research themes, and alignment with green technology. The reported record of 34 documents, 812 citations, and an h-index of 15 provides quantitative evidence of scholarly visibility, while recent publications demonstrate continuing research activity. [1] [2] [3]

Conclusion

Wentao Shang presents a research profile combining membrane technology, computational modeling, imaging, and advanced materials. His recent work addresses practical challenges in separation efficiency, fouling prediction, and material durability. The combination of documented scholarly output and green-technology relevance provides a reasonable academic basis for consideration under the Best Researcher Award. [1] [2] [3]

References

  1. Zhang, C., Lin, Y., Lu, G., Yuan, B., Chen, P., Farid, M. U., Lee, V. P. H., Shang, W., Li, W., & An, A. K. (2026). Surface patterning in membrane distillation: Fabrication, mechanism, and performance enhancement. Separation and Purification Technology, 394(Part 3), Article 137561.
    https://www.sciencedirect.com/science/article/abs/pii/S1383586626008270
  2. Shang, W., Zeng, Y., Xiao, F., Wu, M., Wang, Y., Yang, Z., He, J., & Sun, F. (2026). A multimodal convolutional neural network trained by in-situ OCT characterization for dynamic structural prediction of nanofiltration fouling. Desalination, 639, Article 120676.
    https://www.sciencedirect.com/science/article/pii/S0011916426008325
  3. Lu, G., Ma, R., Zhao, Y., Wang, D., Shang, W., Chen, H., Khan, S. A., Li, M., & Saiz, E. (2025). Solution-sheared supramolecular oligomers with enhanced thermal resistance in interfacial adhesion and bulk cohesion. Nature Communications, 16, 7754.
    https://www.nature.com/articles/s41467-025-63123-9
  4. Elsevier. (n.d.). Scopus author details: Wentao Shang, Author ID 57604364900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57604364900
  5. ORCID. (n.d.). Wentao Shang, ORCID 0000-0002-5168-7696. ORCID.
    https://orcid.org/0000-0002-5168-7696

Efaf Zahra Mahdizadeh Gohari | Sustainable Tech | Women Researcher Award

Women Researcher Award

   Efaf Zahra Mahdizadeh Gohari
Affiliation Queensland University of Technology
Country Australia
Google Scholar ID aKFQBnUAAAAJ
Documents 4
Citations 48
h-index 1
Subject Area Sustainable Tech
Event Technology Scientists Awards
ORCID 0009-0007-3005-499X

Efaf Zahra Mahdizadeh Gohari is affiliated with Queensland University of Technology, Australia, where her research focuses on sustainable technologies, computational fluid dynamics, thermal engineering, and process optimization. Her published work investigates static mixer performance, desalination systems, and multiphase flow modelling, contributing to engineering solutions that improve energy efficiency and sustainable industrial processes.[1]

Abstract

Efaf Zahra Mahdizadeh Gohari conducts engineering research centred on sustainable technology, computational fluid dynamics, fluid mixing, and desalination processes. Her publications investigate innovative static mixer configurations, thermodynamic performance, and numerical simulation techniques that improve industrial efficiency and resource utilization. Through analytical modelling and computational evaluation, her studies contribute practical knowledge for energy-efficient process engineering while supporting environmentally responsible technological development. Her scholarly profile reflects emerging research activity with measurable citation impact and growing recognition within sustainable engineering and thermal systems research.[1][2][3]

Keywords

Sustainable Technology, Computational Fluid Dynamics, CFD, Static Mixers, Fluid Mixing, Multiphase Flow, Desalination, Thermodynamics, Heat Transfer, Numerical Modelling, Engineering Simulation, Process Optimization, Renewable Engineering, Industrial Sustainability, Thermal Systems.

Introduction

The research of Efaf Zahra Mahdizadeh Gohari emphasizes sustainable engineering through computational modelling and process optimization. Her investigations explore advanced mixing technologies, thermal systems, and efficient desalination methods, supporting industrial innovation by combining numerical analysis with engineering design principles for improved operational performance and environmental sustainability.[1][2]

Research Profile

Affiliated with Queensland University of Technology, her academic profile includes four documented publications, forty-eight citations, and an h-index of one. Her work integrates computational fluid dynamics, thermodynamic assessment, and sustainable process engineering to evaluate industrial technologies using quantitative engineering methodologies and scientific validation.[1][3]

Research Contributions

Her research contributes to understanding fluid mixing efficiency, hybrid static mixer development, and humidification–dehumidification desalination systems. Numerical simulations and thermodynamic analyses provide engineering evidence that assists optimization of industrial equipment, promoting enhanced energy utilization, process reliability, and environmentally sustainable engineering applications.[1][2][3]

Publications

Published studies examine numerical modelling of static mixers, comparative analyses of conventional and innovative designs, thermodynamic evaluation of desalination systems, and computational investigation of turbulent flow behaviour. Collectively, these publications demonstrate interdisciplinary expertise spanning fluid mechanics, sustainable technology, and computational engineering research.[1][2][3]

Research Impact

Citation indicators demonstrate increasing scholarly recognition of her engineering research. Her publications support ongoing investigations into sustainable industrial systems by providing computational evidence and analytical methodologies useful for researchers, engineers, and practitioners developing advanced thermal and process engineering technologies.[1][3]

Award Suitability

Her documented research activities, measurable publication record, and contributions to sustainable engineering align with the objectives of the Technology Scientists Awards. The combination of computational innovation, interdisciplinary engineering applications, and commitment to environmentally responsible technologies supports consideration for the Women Researcher Award.[1][2]

Conclusion

Efaf Zahra Mahdizadeh Gohari has developed an emerging academic profile focused on sustainable technology, computational engineering, and process optimization. Her research demonstrates scientific rigor through numerical modelling and engineering analysis, contributing valuable knowledge to fluid dynamics, desalination, and industrial sustainability while supporting future advances in engineering research.[1][2][3]

References

  1. Mahdizadeh Gohari, E. Z., et al. (2024). Numerical Modelling and Comparative Analysis of Novel and Traditional Static Mixers for Single and Multiphase Fluid Mixing. Queensland University of Technology ePrints.
    https://eprints.qut.edu.au/255833/
  2. Mahdizadeh Gohari, E. Z., et al. (2023). Thermodynamic Analysis of Humidification-Dehumidification Desalination System with Semi-open Air Circulation. Modares Mechanical Engineering Journal.
    https://mej.aut.ac.ir/article_730_en.html?lang=fa
  3. Mahdizadeh Gohari, E. Z., et al. (2026). Performance Evaluation of Turbulent Flow Mixing Using Novel Hybrid Static Mixer: A CFD Study. Journal of Engineering Science and Technology.
    https://www.sciencedirect.com/science/article/pii/S0255270126002448?ssrnid=6409368&dgcid=SSRN_redirect_SD
  4. Google Scholar. (n.d.). Author profile: Efaf Zahra Mahdizadeh Gohari.
    https://scholar.google.com/citations?user=aKFQBnUAAAAJ&hl=en
  5. ORCID. (n.d.). ORCID record: Efaf Zahra Mahdizadeh Gohari.
    https://orcid.org/0009-0007-3005-499X

Marina Gravit | Sustainable Tech | Women Researcher Award

Women Researcher Award

Marina Gravit
Peter the Great St.Petersburg Polytechnic University

                             Marina Gravit
Affiliation Peter the Great St.Petersburg Polytechnic University
Country Russia
Scopus ID 56826013600
Documents 104
Citations 780
h-index 15
Subject Area Sustainable Tech
Event Technology Scientists Awards
ORCID 0000-0003-1071-427X

Marina Gravit is a researcher affiliated with Peter the Great St.Petersburg Polytechnic University whose scholarly work focuses on fire safety engineering, sustainable construction materials, structural fire resistance, and passive fire protection technologies. Her research contributes to the advancement of resilient infrastructure and evidence-based approaches for improving building safety under severe fire conditions.[1]

Abstract

This article presents an overview of Marina Gravit’s academic profile, emphasizing her contributions to fire resistance engineering, passive fire protection systems, and sustainable construction technologies. Her publications address critical challenges in structural safety, predictive fire resistance assessment, and the application of advanced protective materials for industrial and civil infrastructure.[1][2]

Keywords

Fire Resistance, Structural Engineering, Passive Fire Protection, Sustainable Construction, Fire Safety Materials, Hydrocarbon Fire Conditions, Steel Structures, Building Safety, Fire Protection Engineering, Sustainable Technology.

Introduction

Marina Gravit’s research addresses contemporary challenges in fire safety engineering through studies of fire-resistant materials, structural performance, and protective technologies. Her work integrates sustainability and engineering reliability, supporting safer infrastructure development while advancing scientific understanding of fire behavior and protection strategies in modern construction environments.[1]

Research Profile

As a scholar in fire safety and construction engineering, Marina Gravit has developed a substantial publication record focused on building resilience, fire protection materials, and structural safety assessment. Her interdisciplinary approach combines engineering analysis, material science, and sustainability principles to address practical and scientific challenges.[1][3]

Research Contributions

Her contributions include investigations of passive fire protection systems, bibliometric analyses of fire-resistant construction technologies, and predictive methodologies for assessing steel structures under hydrocarbon fire exposure. These studies support evidence-based engineering decisions and contribute to enhanced safety standards in industrial and commercial infrastructure.[2][3]

Publications

Notable publications examine fire resistance in building structures, passive protection materials for steel systems exposed to jet fires, and forecasting models for structural performance during hydrocarbon fire scenarios. These works provide valuable insights into fire engineering design, safety optimization, and protective material evaluation.[1][2][3]

Research Impact

The impact of Marina Gravit’s research is reflected in scholarly citations, practical relevance to fire safety engineering, and contributions to safer structural design practices. Her studies support researchers, engineers, and policymakers seeking improved methodologies for fire resistance assessment and infrastructure protection.[1][3]

Award Suitability

Marina Gravit demonstrates strong suitability for the Women Researcher Award through her sustained scholarly productivity, international research visibility, and contributions to sustainable technology and fire safety engineering. Her work addresses critical societal challenges while advancing knowledge relevant to resilient and sustainable built environments.[1][2]

Conclusion

Marina Gravit’s academic achievements illustrate a commitment to advancing fire safety science, sustainable construction technologies, and structural resilience. Through influential research and practical engineering applications, she has contributed valuable knowledge supporting safer infrastructure and ongoing innovation within the field of sustainable technology.[1][3]

References

  1. Gravit, M., et al. (2025). Fire Resistance of Building Structures and Fire Protection Materials: Bibliometric Analysis. Fire, 8(1), 10.
    https://www.mdpi.com/2571-6255/8/1/10
  2. Gravit, M., et al. (2024). Impact of Jet Fires on Steel Structures: Application of Passive Fire Protection Materials. Fire, 7(8), 281.
    https://www.mdpi.com/2571-6255/7/8/281/review_report
  3. Gravit, M., et al. (2024). Oil and Gas Structures: Forecasting the Fire Resistance of Steel Structures with Fire Protection under Hydrocarbon Fire Conditions. Fire, 7(6), 173.
    https://www.mdpi.com/2571-6255/7/6/173
  4. Elsevier. (n.d.). Scopus author details: Marina Gravit, Author ID 56826013600. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=56826013600
  5. ORCID. (n.d.). Marina Gravit ORCID Record.
    https://orcid.org/0000-0003-1071-427X

Dr. Xiangyu Zhang | Green Manufacturing | Young Scientist Award

Dr. Xiangyu Zhang | Green Manufacturing | Young Scientist Award

Ansteel Beijing Research Institute | China

Dr. Xiangyu Zhang is an emerging researcher in the field of advanced functional materials, with a particular focus on shape memory alloys and elastocaloric materials for energy-efficient thermal management applications. With a scholarly output of 8 publications and 131 citations, Zhang demonstrates a growing academic impact, supported by an h-index of 6. His work, including recent contributions on room-temperature elastocaloric effects in Co–Ni–Ga alloys, reflects a strong emphasis on solid-state cooling technologies and smart material design. Zhang has engaged in collaborative research with a network of 33 co-authors, indicating active participation in interdisciplinary and international research communities. His research contributes to the development of sustainable cooling solutions, aligning with global priorities in energy efficiency and environmental sustainability. Overall, Zhang’s profile reflects a focused and technically relevant contribution to materials science and applied physics.

Citation Metrics (Scopus)

131
100
50
10
0

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131

Documents

8

h-index

6

Citations

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View Scopus Profile
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Top 5 Featured Publications

Junyong He | Environmental Science | Research Excellence Award

Assoc. Prof. Dr. Junyong He | Environmental Science | Research Excellence Award

Institute of Solid State Physics | China

Dr. Junyong He is a researcher at the Institute of Solid State Physics, Chinese Academy of Sciences, specializing in environmental materials science, catalysis, and advanced separation technologies. His research focuses on the design and interfacial engineering of functional materials—including metal–organic frameworks, MXenes, single-atom catalysts, and catalytic membranes—for water treatment, pollutant removal, and advanced oxidation processes. He has authored 51 Scopus-indexed publications, receiving over 3,673 citations, with an h-index of 32, reflecting strong academic influence and sustained research impact. His work has been published in leading journals such as Water Research, Journal of Hazardous Materials, Separation and Purification Technology, and Journal of Colloid and Interface Science. Dr. He actively collaborates with a broad international network of researchers, as evidenced by extensive co-authorship across institutions. The societal impact of his research lies in advancing sustainable water purification technologies, mitigating environmental pollution, and supporting industrial wastewater management, contributing meaningfully to global environmental protection and public health.

 

Citation Metrics (Scopus)

3673
3000
2000
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3,673

Documents

51

h-index

32

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Top 5 Featured Publications

Bellel Nadir | Renewable Energy | Best Researcher Award

Prof. Bellel Nadir | Renewable Energy | Best Researcher Award

Dean | University of Constantine 1 | Algeria

Prof. Bellel Nadir is a multidisciplinary researcher specializing in sustainable materials, thermal–fluid systems, and energy-efficient engineering solutions. With a portfolio of 20 scientific publications, 126 citations and 7 h-index, his work advances bio-based construction materials and solar-driven thermal technologies. Notable contributions include the development of lightweight bio-concretes using agricultural waste and optimized CFD-based designs for solar concentrator systems. His research is strengthened by collaborations with more than 20 international co-authors, reflecting broad academic engagement. Bellel’s work supports global sustainability goals by promoting renewable-energy applications, valorizing biomass residues, and improving eco-friendly construction practices, thereby offering measurable environmental and societal benefits.

Citation Metrics (Scopus)

126
120
90
60
30
0

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126

Documents

20

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7

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Top 5 Featured Publications

Da-Zhen Xu | Green Technology | Best Researcher Award

Dr. Da-Zhen Xu | Green Technology | Best Researcher Award

Senior Chemical Engineer | Nankai University | China

Dr. Dazhen Xu is a distinguished researcher at Nankai University, Tianjin, China, specializing in organic synthesis, catalysis, and radical-mediated transformations. With 47 peer-reviewed publications and over 1,231 citations, Dr. Xu has established a notable presence in the field of synthetic and organometallic chemistry. His work primarily focuses on developing innovative, sustainable, and atom-economical methodologies for the construction of complex organic molecules, particularly through metal-catalyzed and metal-free multicomponent reactions. Recent studies highlight his group’s advancements in iron- and copper-mediated transformations, including Markovnikov-selective radical hydrothiolation of alkenes, oxidative arylation and hydroxylation of indolin-2-ones, and bromocyclization of olefinic amides, which contribute significantly to green chemistry and pharmaceutical synthesis. Dr. Xu’s research integrates mechanistic insight with practical synthetic utility, leading to scalable, cost-effective protocols that minimize environmental impact. His collaborations with over 70 co-authors reflect a strong interdisciplinary approach, bridging academic research and industrial application across catalysis, materials, and medicinal chemistry. With an h-index of 23, Dr. Xu’s publications have gained international recognition for their methodological innovation and relevance to sustainable chemical processes. His contributions not only advance the frontiers of organic chemistry but also align with global goals for environmentally benign synthesis, influencing future directions in both academic research and industrial innovation.

Profiles: Scopus | ORCID

Featured Publications 

1. Wang, Y.-N., Jia, H., Yao, L., Chen, Y., Liu, H.-L., Liang, F., … Xu, D.-Z. (2025). Bifunctional iron-mediated multicomponent Markovnikov-selective radical hydrothiolation of alkenes. Organic Chemistry Frontiers, 12, 4462-4468.

2. Li, T.-Y., Xu, L.-L., Wu, D.-Q., Liu, J.-J., Yang, Y., Miao, Z., … Xu, D.-Z. (2025). Copper-Catalyzed Oxidative Arylation and Hydroxylation of Indolin-2-ones for Direct Construction of Tetrasubstituted Carbon Centers. Journal of Organic Chemistry, 90(2), 960-970.
Cited by: 1

3. Xu, L.-L., Wang, S., Sun, J., Zhang, R., Tong, J., … Xu, D.-Z. (2024). Facile access to S-aryl/alkyl dithiocarbamates via a three-component reaction under metal-free conditions. Organic & Biomolecular Chemistry, 22, 7702.
Cited by: 1

4. Zhao, T.-T., Bian, Q., Zhao, Y.-W., Xu, L.-L., Xu, D.-Z., & Zhao, W.-G. (2024). Iron-Mediated Bromocyclization of Olefinic Amides for the Synthesis of Bromobenzoxazines. Synthesis, 56, 2993-3000.
Cited by: 3

Dr. Dazhen Xu’s pioneering research in sustainable catalysis and radical chemistry is transforming the way complex molecules are synthesized, promoting greener and more efficient chemical manufacturing. His vision is to integrate eco-conscious innovation with high-impact synthetic strategies, advancing both scientific knowledge and the global transition toward sustainable chemical industries.