Sayyed Javad Asadpoor | Energy Sustainability | Best Researcher Award

Global Scientist Day Awards

Sayyed Javad Asadpoor is a researcher affiliated with Mashhad Branch-Islamic Azad University, Iran, whose indexed research profile is associated with the subject area of Energy Sustainability. His scholarly record includes seven documents, 25 citations, and an h-index of 3 according to the supplied Scopus author information. This article presents a neutral academic recognition profile in the context of the Global Scientist Day Awards.

Sayyed Javad Asadpoor
Affiliation Mashhad Branch-Islamic Azad University
Country Iran
Scopus ID 57196087982
Documents 7
Citations 25
h-index 3
Subject Area Energy Sustainability
Event Global Scientist Day Awards
ORCID 0000-0002-0977-8674

The profile is intended to provide an organized overview of the researcher’s documented scholarly indicators, research orientation, publication activity, and relevance to an academic recognition framework. Bibliographic indicators should be interpreted within the scope and coverage of the indexing databases from which they are obtained. [1]

Abstract

Sayyed Javad Asadpoor is an Iran-based researcher affiliated with Mashhad Branch-Islamic Azad University and associated with Energy Sustainability. The supplied scholarly profile records seven documents, 25 citations, and an h-index of 3 in Scopus. His research profile is considered within the broader academic context of sustainable energy research, where interdisciplinary investigation supports efficient resource use and long-term environmental objectives.[1]

Keywords

Energy Sustainability; Sustainable Energy Research; Academic Research; Scholarly Publications; Research Impact; Scopus; ORCID; Mashhad Branch-Islamic Azad University; Iran; Global Scientist Day Awards.

Introduction

Energy sustainability is a multidisciplinary research area concerned with the development, management, and responsible utilization of energy resources while considering environmental, economic, and societal dimensions. Academic research in this field frequently intersects with engineering, environmental science, energy systems, and resource management.[2]

Research Profile

Sayyed Javad Asadpoor is affiliated with Mashhad Branch-Islamic Azad University in Iran. The supplied Scopus information identifies the researcher with Author ID 57196087982 and records seven documents, 25 citations, and an h-index of 3. These indicators provide quantitative evidence of indexed scholarly activity, although citation metrics can vary according to database coverage, publication type, citation age, and field-specific practices. [1][3]

Research Contributions

The documented contribution profile is centered on Energy Sustainability, a research domain requiring consideration of energy efficiency, sustainable resource utilization, environmental responsibility, and technological development. Based on the supplied information, Asadpoor’s contribution is best described through the established research area and indexed publication record rather than through unsupported claims about individual discoveries or specific technological outcomes. [2][1]

Publications

The supplied Scopus profile records seven documents for Sayyed Javad Asadpoor. These indexed documents constitute the publication base from which the reported citation count and h-index are derived. Individual publication titles, journal information, publication years, and DOI identifiers have not been supplied in the source data for this article; therefore, no specific publication or DOI is attributed here without verification. [1][3]

Research Impact

The supplied profile reports 25 citations and an h-index of 3. Citation counts represent the number of indexed citations associated with the documented publication record, while the h-index reflects a combined measure of publication output and citation distribution. Such indicators can provide useful quantitative context but should be considered alongside publication quality, research relevance, collaboration, methodological contribution, and disciplinary context. [1][2]

Award Suitability

The Global Scientist Day Awards provide an academic recognition framework through which researchers may be considered in relation to their documented scholarly activities and research areas. Sayyed Javad Asadpoor’s affiliation with Mashhad Branch-Islamic Azad University, research orientation in Energy Sustainability, indexed publication record, citation count, and h-index form relevant evidence for consideration within such an academic recognition process. [4]

Conclusion

Sayyed Javad Asadpoor is an Iran-based researcher affiliated with Mashhad Branch-Islamic Azad University and associated with Energy Sustainability. The supplied Scopus indicators document seven publications, 25 citations, and an h-index of 3, providing a concise quantitative representation of indexed scholarly activity. [1] [3]

References

  1. Elsevier (2026.). Scopus author details: Sayyed Javad Asadpoor, Author ID 57196087982. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57196087982
  2. Assessment of impacting architectural aspects on UHI and energy in apartment housing of Mashhad, Iran.
    https://www.sciencedirect.com/org/science/article/abs/pii/S0969998826001050
  3. ORCID (2026.). ORCID record: Sayyed Javad Asadpoor, ORCID iD 0000-0002-0977-8674. ORCID.
    https://orcid.org/0000-0002-0977-8674
  4. Global Scientist Day Awards (2026.). Global Scientist Day Awards. Official Award Website.
    https://scientistday.org/

Wirginia Schmidt | Clean Energy | Innovative Research Award

Global Scientist Day Awards

Wirginia Schmidt
Researcher Wirginia Schmidt
Affiliation Silesian University of Technology
Country Poland
Documents 1
Subject Area Clean Energy
Event Global Scientist Day Awards
ORCID 0009-0002-0353-1344

Wirginia Schmidt is affiliated with the Silesian University of Technology, Poland, and has contributed to research within the field of Clean Energy. Academic recognition initiatives such as the Global Scientist Day Awards acknowledge researchers whose scholarly work supports innovation, sustainable technological advancement, and scientific collaboration. The research profile summarized below presents an objective overview of institutional affiliation, research interests, scholarly output, and the broader significance of ongoing contributions within the clean energy domain.[1]

Abstract

Clean energy research continues to shape scientific progress by improving sustainable technologies, reducing environmental impacts, and enhancing energy efficiency across industrial and societal applications.Recognition through the Global Scientist Day Awards highlights the importance of scientific excellence, responsible research practices, interdisciplinary collaboration, and contributions that support future innovation within sustainable energy systems.[1]

Keywords

Clean Energy, Sustainable Engineering, Energy Technologies, Scientific Research, Environmental Sustainability, Academic Recognition, Poland, Silesian University of Technology, Global Scientist Day Awards, Renewable Energy.

Introduction

Scientific research in clean energy integrates engineering principles, environmental responsibility, and technological innovation to support sustainable development. Universities and research institutions contribute significantly to this objective by advancing knowledge through experimentation, publication, and interdisciplinary cooperation.[2]

Research Profile

Wirginia Schmidt is associated with the Silesian University of Technology, one of Poland’s established institutions for engineering and applied scientific research. Available scholarly records indicate research activity within the Clean Energy subject area and indexed scientific publication. The research profile demonstrates commitment to academic quality, institutional collaboration, and dissemination of scientific findings through recognized scholarly communication channels.[1]

Research Contributions

Research contributions within clean energy commonly involve advancing sustainable technologies, improving resource efficiency, and supporting environmentally responsible engineering practices. Scholarly investigations in this discipline frequently contribute to scientific understanding of renewable energy systems, industrial optimization, emissions reduction, and sustainable infrastructure development. Such research strengthens international scientific collaboration while supporting long-term technological progress.[2]

Research Impact

The broader impact of clean energy research extends beyond academic publication by supporting evidence-based engineering practices, sustainable industrial development, and environmental stewardship. Contributions from researchers strengthen collaborative scientific networks, encourage innovation, and provide knowledge that may assist policymakers, engineers, and future investigators working toward sustainable energy solutions.[2]

Award Suitability

Based on the available academic information, Wirginia Schmidt demonstrates characteristics consistent with recognition through scholarly award programs emphasizing research quality, scientific integrity, institutional contribution, and participation in advancing clean energy research. Evaluation within the Global Scientist.[1]

Conclusion

Wirginia Schmidt’s academic profile reflects participation in clean energy research through institutional affiliation, scholarly publication, and engagement with internationally recognized research identification systems.[2]

References

  1. ORCID (2026). ORCID record: Wirginia Schmidt.
    https://orcid.org/0009-0002-0353-1344
  2. Global Scientist Day Awards (2026). International scientific recognition and award programme.
    https://scientistday.org/
  3. Green Cities and Innovative Urban Solutions: A Study of Greening Urban Spaces in Selected European Cities.
    https://www.mdpi.com/2071-1050/18/15/7795

Ahmed Albojamal | Energy Sustainability | Research Excellence Award

Dr. Ahmed Albojamal | Energy Sustainability | Research Excellence Award

San Diego City College | United States

Dr. Ahmed Albojamal is a mechanical engineer specializing in thermal transport, nanofluids, electronic cooling, and phase change materials. His research focuses on heat transfer enhancement in porous media and metal foams, nanofluid flow modeling, and energy storage systems. He has contributed extensively to understanding particle deposition, natural and forced convection, and thermal management in complex geometries, integrating numerical simulations with experimental analysis. His work advances energy-efficient HVAC systems, thermal management of electronic devices, and sustainable building technologies. With multiple peer-reviewed publications and expertise in both theoretical and applied thermal sciences, he bridges engineering fundamentals with practical energy solutions.

Citation Metrics (Scopus)

  450
  300
   150
    50
       0

Citations
323

Documents
7

h-index
6

Citations

Documents

h-index


View Scopus Profile    View Orcid Profile View Google Scholar Profile

Featured Publications

Rawdah Whba | Energy Sustainability | Research Excellence Award

Dr. Rawdah Whba | Energy Sustainability | Research Excellence Award

Dr. Rawdah Whba | Taiz University & Inonu University | Yemen

Dr. Rawdah Abduh Ghaleb Whba is an Assistant Professor of Chemistry at the Faculty of Applied Sciences, Taiz University, Yemen, and currently a Postdoctoral Researcher at İnönü University, Malatya, Türkiye. She specializes in energy storage and conversion, with a strong research focus on polymer electrolytes, electrode materials, and advanced electrochemical systems including solid-state lithium-ion batteries, sodium-ion batteries, and supercapacitors. Dr. Whba completed two bachelor’s degrees in Chemistry from Taiz University with first-class honours, earning two Presidential Awards of Yemen for academic excellence (2006, 2008). She received an English and computer diploma from NODS (2007) and joined Taiz University as a lecturer in 2009. She obtained her MSc (2017) and PhD (2022) in Chemistry from Universiti Kebangsaan Malaysia (UKM) under prestigious scholarships from the Yemeni Government and the Islamic Development Bank. She later served as a research assistant at UKM before receiving the Türkiye Scholarships Postdoctoral Award (2023–2024), completing a fellowship at Istanbul Medeniyet University. Currently, Dr. Whba works on Na-ion full-cell development, specializing in high-performance cathode materials, pre-sodiation strategies, interfacial engineering, operando analysis, and DFT-supported materials optimization. Her broader expertise includes polymer synthesis, grafted polymers, thin-film membrane fabrication, organic/inorganic materials synthesis, electrochemical characterization, kinetic studies, and materials evaluation for next-generation rechargeable batteries. Dr. Whba has authored numerous Q1 and Q2 Web of Science journals, including publications in Journal of Power Sources, Electrochimica Acta, Ionics, ACS Applied Materials & Interfaces, Langmuir, Advanced Sustainable Systems, Energy Technology, and International Journal of Biological Macromolecules. She has also published impactful review articles and collaborative works involving operando XAS, DFT studies, and biomass-derived electrode materials. She is an active scientific reviewer, contributing to Springer, Elsevier, ACS, Ionics, Carbon Letters, and multiple high-impact journals, reviewing more than 30 manuscripts, book chapters, and conference submissions. Dr. Whba has also provided academic service at Taiz University as Secretariat of the Department and Examination Committee Member and has represented academic staff in the University Syndicate since 2014. A dedicated educator, she has taught a wide range of undergraduate chemistry courses—General, Inorganic, Organic, Analytical, Physical, Biochemistry, and Pharmaceutical Analysis—at Taiz University and other institutions in Yemen. Dr. Whba is a member of several professional bodies including the American Chemical Society (ACS), the International Society of Electrochemistry (ISE), the Polymer Ionic Group (Malaysia), and the Taiz University Staff Syndicate. Her research continues to make significant contributions in polymer chemistry, electrochemistry, and sustainable energy materials, with ongoing work advancing the performance, stability, and scalability of sodium- and lithium-ion energy storage technologies.

Profile: Orcid | Scopus | Google Scholar

Featured Publications

Dogan, E., Maiga, A., Whba, R., Harfouche, M., Ozturk, Z. R., Farhan, A., Altin, E., Duygulu, Ö., Ipek, S., Kartal, R., et al. (2026). Influence of iron doping on α-NaMnO₂ lattice symmetry: Insight from operando X-ray absorption, ex-situ structural analysis, and electrochemical performance using chestnut shell-derived hard carbon. Journal of Power Sources. https://doi.org/10.1016/j.jpowsour.2025.238602

Ateş, M. N., Zengin, F., Whba, R., Tunaboylu, B., Aydemir, U., Peighambardoust, N. S., Karslıoğlu, N. G., Malkoç, H. C., Demiryürek, R., Güleryüz, Ö., et al. (2025). Mechanistic insights into cathode-driven capacity degradation of NMC111/graphite pouch cells under long-term cycling. Electrochimica Acta. https://doi.org/10.1016/j.electacta.2025.147611

Whba, R., Altın, S., Serin, S., Whba, F., Nakir, M. Y., & Sahinbay, S. (2025). Synergistic behavior of epoxidized natural rubber grafted di(ethylene glycol) methyl ether methacrylate-based solid polymer electrolytes: Experimental and density functional theory (DFT) study. Journal of Industrial and Engineering Chemistry. https://doi.org/10.1016/j.jiec.2025.11.038

Whba, R., Sahinbay, S., Whba, F., Nakir, M. Y., & Altin, S. (2025). Unlocking the potential of epoxidized natural rubber (ENR)-based polymer electrolytes: Key strategies, bibliometric insights, and future directions. Langmuir. https://doi.org/10.1021/acs.langmuir.5c00631

Dogan, E., Whba, R., Altin, E., Moeez, I., Chung, K. Y., Stoyanova, R., Koleva, V., Aktas, A., Altin, S., & Sahinbay, S. (2025). Optimized performance of Na₀.₆₇Mn₀.₅Fe₀.₅O₂@TiO₂ and presodiated hard carbon (Pre-SHC) full-cells using direct contact method. Journal of Power Sources. https://doi.org/10.1016/j.jpowsour.2025.236327

Whba, R., Su’ait, M. S., Whba, F., & Ahmad, A. (2024). Research progress on polyacrylonitrile-based polymer electrolytes for electrochemical devices: Insight into electrochemical performance. Journal of Power Sources. https://doi.org/10.1016/j.jpowsour.2024.234539

Jimmy Romanos | Energy Sustainability | Excellence in Research

Dr. Jimmy Romanos | Energy Sustainability | Excellence in Research

Dr. Jimmy Romanos | Lebanese American University | Lebanon

Dr. Jimmy Romanos is an Associate Professor of Physics at the Lebanese American University, with a distinguished record in interdisciplinary research spanning thermal physics, materials science, and energy storage. He holds a Ph.D. in Physics from the University of Missouri, USA, and has extensive experience in both academia and industry, including leadership roles as a lead materials scientist in the U.S. and as a consultant in the energy sector. His research focuses on atomic-scale thermodynamic processes in gas adsorption, targeting applications such as carbon dioxide capture, methane and hydrogen storage, gas separation, and lead-free ceramics. Dr. Romanos has been recognized with the Shoman Award for Arab Researchers in Physics, becoming the first Lebanese physicist to receive this honor. He has led numerous funded projects, both intramural and extramural, and holds multiple patents in advanced carbon materials and gas storage technologies. With over a decade of prolific contributions through peer-reviewed publications, conference presentations, and industrial reports, his work bridges computational, theoretical, and experimental approaches to address critical challenges in energy and environmental technologies.

Profile:  Google Scholar 

Featured Publications

Romanos, J., Beckner, M., Rash, T., Firlej, L., Kuchta, B., Yu, P., Suppes, G., … (2012). Nanospace engineering of KOH activated carbon. Nanotechnology, 23(015401), 1–11. https://doi.org/10.1088/0957-4484/23/1/015401

Kuchta, B., Firlej, L., Mohammadhosseini, A., Boulet, P., Beckner, M., … Romanos, J. (2012). Hypothetical high-surface-area carbons with exceptional hydrogen storage capacities: Open carbon frameworks. Journal of the American Chemical Society, 134(36), 15130–15137. https://doi.org/10.1021/ja3062439

Romanos, J., Burress, J., Pfeifer, P., Rash, T., Shah, P., Suppes, G. (2012). High surface area carbon and process for its production. US Patent 20130190542A1.

Beckner, M., Romanos, J., Dohnke, E., … (2011). Analysis of hydrogen sorption characteristics of boron-doped activated carbons. Bulletin of the American Physical Society, 56.

Soo, Y. C., Beckner, M., Romanos, J., Wexler, C., Pfeifer, P., Buckley, P., … (2011). A high volume, high throughput volumetric sorption analyzer. Bulletin of the American Physical Society, 56(1), 20003.

Asif Khan | Clean Energy | Best Researcher Award

Dr. Asif Khan | Clean Energy | Best Researcher Award 

Dr. Asif Khan | University of Science and Technology Bannu kpk | Pakistan

Asif Nawaz Khan is a committed physicist and lecturer at the University of Science and Technology Bannu, with extensive experience in teaching and research at both undergraduate and postgraduate levels. He is currently pursuing a Ph.D. in Physics and has developed strong expertise in computational and theoretical physics, particularly in the design and analysis of 2D and 3D perovskite materials. His research encompasses structural, optical, thermoelectric, elastic, and thermodynamic properties, alongside solar cell device performance, phonon calculations, and molecular dynamics simulations. Proficient in advanced simulation software and machine learning techniques, he actively supervises students in both experiments and computational modeling, contributing significantly to the advancement of materials science.

Profile: Google Scholar

Featured Publications

Khan, A., Khan, N. U., Nawaz, A., & Ullah, K., & Manan, A. (2024). A DFT study to explore structural, electronic, optical and mechanical properties of lead-free Na2MoXO6 (X= Si, Ge, Sn) double perovskites for photovoltaic and optoelectronic applications. Computational and Theoretical Chemistry, 1240, 114834.

Hosen, A., Mousa, A. A., Nemati-Kande, E., Khan, A. N., Abu-Jafar, M. S., … (2025). Systematic computational screening and design of double perovskites Q2LiMH6 (Q= K, Rb; M= Ga, In, Tl) for efficient hydrogen storage: A DFT and AIMD approach. Surfaces and Interfaces, 106608.

Khan, A. N., Rabhi, S., Jehangir, M. A., Charif, R., Khan, N. U., Begagra, A., … (2025). Evaluating A2SrGeI6 (A= K and Rb) lead-free double perovskites: Structural, elastic, and optoelectronic insights for clean energy. Inorganic Chemistry Communications, 174, 113949.

Khan, N. U., Ghani, U., Khan, A., Khan, A. N., Ullah, K., Ali, R., & Fadhali, M. M. (2025). Theoretical insight into stabilities and optoelectronic properties of RbZnX3 (X= Cl, Br) halide perovskites for energy conversion applications. Optical and Quantum Electronics, 57(1), 109.

Rabhi, S., Khan, A. N., Chinoune, O., Charif, R., Bouri, N., Al-Qaisi, S., Sadaf, S., … (2025). Insight into NaSiCl3: A lead-free perovskite for the next generation revealed by DFT and SCAPS-1D. Physical Chemistry Chemical Physics, 27(25), 13490–13507.

Hosen, A., Sadeghi, A., Abdulhussein, H. A., Nemati-Kande, E., Khan, A. N., … (2025). First-principles insights into NaScQH6 (Q= Fe, Ru, Os): Promising high-density hydrogen storage materials. International Journal of Hydrogen Energy, 177, 151392.

Khan, A. N., Khan, N. U., Khan, A., Ali, R., & Fadhali, M. M. (2025). Lead-free, stable, and effective double Ca2TiXO6 (X= Ge, Sn) perovskites for photovoltaic application. Journal of Sol-Gel Science and Technology, 1–13.

Khan, A. N., Kaleem, M., Khan, N. U., Nasir, A., Khan, A., & Abbasi, M. Z. (2026). Multi-functional DFT and SCAPS-1D analysis of lead-free Z2MgGeI6 (Z= Na, K) double perovskites for optoelectronic, photo-catalytic, and photovoltaic applications. Solar Energy Materials and Solar Cells, 294, 113922.

Khan, A. N., Khan, N. U., Kaleem, M., Tanzeel, M., Nasir, A., Hosen, A., Akremi, A., … (2025). Lead-free X2MgGeI6 (X= Rb, Cs) double perovskites for multi-functional energy applications: A DFT and SCAPS-1D perspective. Solid State Sciences, 108049.

Khan, Z., Manan, A., Khan, N. U., Khan, A. N., Khan, A., & Liu, G., … (2025). Exploring Sn-based vacancy-ordered halide double perovskites Na2Sn(Cl/Br)6 for optoelectronic, thermoelectric, and solar-driven hydrogen reduction applications. Chemical Papers, 1–21.

Khan, Z., Manan, A., Khan, N. U., Khan, A. N., Khan, A., Joifullah, S., Al Yeamin, M., … (2025). DFT-driven pressure-induced modulation in K2TIYCl6: Unlocking pressure-responsive physical and photo-catalytic properties. Optical and Quantum Electronics, 57(7), 1–32.