Amira Haddouk | Wireless Power Transfer | Best Academic Researcher Award

Best Academic Researcher Award

Amira Haddouk
University of Tunis, Tunisia

Amira Haddouk
Affiliation University of Tunis
Country Tunisia
Scopus ID 18634101800
Documents 14
Citations 37
h-index 4
Subject Area Wireless Power Transfer
Event World Green Energy Awards
ORCID 0000-0001-5940-7735

Amira Haddouk is an Associate Professor in Electrical Engineering at the University of Tunis whose work focuses on smart sensors, embedded systems, energy measurement technologies, and wireless power transfer applications. Her academic activities combine industrial instrumentation, intelligent monitoring systems, and renewable energy technologies. Through publications, conference contributions, and engineering research, she has developed practical solutions supporting efficient energy management and advanced sensing systems.[1]

Abstract

This article presents an overview of the academic profile of Amira Haddouk and highlights her contributions to electrical engineering, smart sensing technologies, and wireless energy transfer systems. Her work demonstrates an interdisciplinary approach integrating measurement science, embedded electronics, and renewable energy applications. These achievements provide a foundation for consideration within academic recognition programs and research excellence initiatives.[2]

Keywords

Wireless Power Transfer, Smart Sensors, Embedded Systems, Energy Measurement, Renewable Energy, Industrial Instrumentation, Electrical Engineering, Intelligent Monitoring Systems.

Introduction

Research in modern electrical engineering increasingly requires integration between sensing technologies, communication systems, and energy-efficient design. Amira Haddouk has contributed to these areas through studies addressing intelligent energy monitoring, smart metering platforms, and advanced measurement methodologies. Her scholarly activities reflect a commitment to practical engineering solutions supported by scientific investigation and experimental validation.[3]

Research Profile

As an Associate Professor, Haddouk has developed expertise in smart sensors, embedded platforms, electrical measurement systems, and energy management technologies. Her academic background includes doctoral research in electrical engineering and continued work in renewable energy applications. Current investigations include wireless power transfer systems capable of supporting sensor networks operating in inaccessible environments.[1]

Research Contributions

Her contributions include the development of smart energy meters, greenhouse monitoring systems, thermal energy management models, and power measurement techniques. These studies have addressed both theoretical and practical challenges associated with energy efficiency and intelligent control. The research outcomes support sustainable engineering practices and demonstrate relevance to industrial and environmental applications.[4]

Publications

Amira Haddouk has authored and co-authored publications covering wireless power transfer, smart energy metering, intelligent greenhouse control, electrical measurement systems, and sustainable energy technologies. Her publications appear in peer-reviewed journals and international conference proceedings. The body of work demonstrates continuous engagement with emerging engineering challenges and practical technological innovation.[2]

Research Impact

The measurable research impact includes citations, international collaborations, and scholarly dissemination through recognized publication channels. Her work contributes to the advancement of sustainable energy systems and intelligent instrumentation technologies. By connecting engineering theory with real-world implementation, the research supports academic and industrial communities alike.[5]

Award Suitability

The academic record, research productivity, and specialization in wireless power transfer and intelligent energy systems support consideration for the Best Academic Researcher Award. Her portfolio demonstrates sustained scholarly activity, publication output, and practical engineering relevance. These characteristics align with the objectives commonly associated with international research recognition programs.

Conclusion

Amira Haddouk has established a research profile centered on innovation in electrical engineering, energy monitoring, and wireless power technologies. Her scholarly achievements reflect continuous engagement with contemporary engineering challenges. The combination of academic leadership, publication activity, and applied research strengthens her profile within international research communities.

References

  1. Chebbi, A., Haddouk, A., Monteiro, V., Afonso, J. L., & Mechergui, H. (2025). Design and implementation of a resonant inductive wireless power transfer system powered by a Class D amplifier for smart sensors in inaccessible environments. Electronics, 15(1), Article 33.
    https://doi.org/10.3390/electronics15010033
  2. Haddouk, A., & Mechergui, H. (2024). Wireless energy transfer for powering smart sensors. In Proceedings of the International Conference on Control, Decision and Information Technologies (CoDIT). IEEE.
    https://doi.org/10.1109/CODIT62066.2024.10708446
  3. Haddouk, A., Tanazafti, A., & Mechergui, H. (2023). Development of a smart energy meter for electrical energy consumption and power. In Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering (LNICST). Springer.
    https://doi.org/10.1007/978-3-031-33979-0_7
  4. Haddouk, A., Khlifi, K., Monteiro, V., Afonso, J. L., & Mechergui, H. (2021). Power losses reduction in a variable linear power supply using the LM317 voltage regulator. ISA Transactions, 116, 234–244.
    https://doi.org/10.1016/j.isatra.2020.12.004
  5. Khlifi, K., Haddouk, A., Ayari, A., & Mechergui, H. (2018). Measurement of active power, electrical energy, and TRMS voltage and current using the dual slope conversion technique. Turkish Journal of Electrical Engineering & Computer Sciences, 26(2), 1024–1038.
    https://doi.org/10.3906/ELK-1704-131

John Festus Vandy | Biotechnology | Excellence in Research Award

Excellence in Research Award

John Festus Vandy
Affiliation Institute of Public Administration and Management
Country Sierra Leone
Google Scholar ID aSL0AAAAJ&hl
Documents 21
Citations 31
h-index 4
Subject Area Biotechnology
Event World Green Energy Awards
ORCID 0009-0000-9047-3941

John Festus Vandy is a researcher affiliated with the Institute of Public Administration and Management, Sierra Leone. His scholarly activities focus on sustainability, organizational development, human resource management, and public sector transformation. Through interdisciplinary research and academic publications, he has contributed to discussions surrounding sustainable development goals, green human resource management, and institutional effectiveness.[1]

Abstract

This article evaluates the academic profile of John Festus Vandy in the context of research excellence and sustainability-oriented scholarship. His research activities emphasize green management practices, public administration, organizational performance, and sustainable development. Through peer-reviewed publications and collaborative research, he has demonstrated a commitment to addressing contemporary challenges relevant to developing economies and institutional advancement.[2]

Keywords

Research Excellence, Sustainability, Green Human Resource Management, Public Administration, Organizational Development, SDG Localization, Human Resource Management, Academic Research.

Introduction

Academic excellence is measured through the quality of research outputs, societal relevance, and scholarly engagement. John Festus Vandy has established a growing publication record that explores the relationship between sustainability initiatives and organizational management. His studies frequently address policy implementation, sustainable practices, and strategic management frameworks within developing countries.[3]

Research Profile

The research profile of John Festus Vandy reflects interdisciplinary engagement across sustainability, management sciences, and public sector studies. His scholarly work incorporates comparative analyses, policy evaluation, and green organizational practices. These themes demonstrate a consistent effort to generate evidence-based knowledge that supports sustainable institutional development and improved governance outcomes.[4]

Research Contributions

His research contributions include investigations into green human resource management, circular economy practices, and sustainable development goal localization. These studies examine practical mechanisms that organizations and governments can adopt to improve sustainability performance. The resulting findings contribute to academic discourse while also supporting policy and managerial decision-making.[2]

Publications

John Festus Vandy has authored and co-authored publications addressing SDG localization, circular economy integration, knowledge management, public sector reform, and comparative human resource management. His publication portfolio demonstrates continuous scholarly engagement and highlights research themes that connect sustainability objectives with organizational effectiveness across diverse institutional environments.[1]

Research Impact

The impact of his work is reflected through citations, collaborative publications, and growing international visibility. By focusing on sustainability-related challenges and management innovation, his studies provide valuable insights for academics, policymakers, and practitioners. The integration of environmental and organizational perspectives further enhances the relevance of his research contributions.[2]

Award Suitability

Based on documented publications, research engagement, and sustainability-focused scholarship, John Festus Vandy demonstrates characteristics aligned with recognition through the Excellence in Research Award. His contributions to green management, sustainable development, and organizational studies support the objectives of international research recognition programs and sustainability-oriented academic awards.

Conclusion

John Festus Vandy has developed a research profile characterized by interdisciplinary scholarship and sustainability-oriented inquiry. Through published research and collaborative academic efforts, he has contributed to contemporary discussions on green management and organizational development. His achievements reflect ongoing commitment to academic excellence and meaningful research engagement.

References

  1. Vandy, J. F., Mohanty, S., & Mohapatra, S. (2026). Cultural dimensions and SDG localization in developing countries: A cross-country analysis of India and Sierra Leone. Sustainable Communities.
    https://doi.org/10.1080/29931282.2026.2620146
  2. Vandy, J. F., Mohanty, S., Agrawal, A., & Mohapatra, S. (2026). Contribution of GHRM to Circular Economy in India. Circular Economy and Sustainability.
    https://doi.org/10.1007/s43615-026-00778-6
  3. Vandy, J. F., & Mohanty, S. (2025). Cross-national analysis of GHRM practices in India and Sierra Leone as a catalyst for SDG localization. Discover Sustainability.
    https://doi.org/10.1007/s43621-025-01891-6
  4. Vandy, J. F. (2023). The nexus between knowledge and talent management for future workplace: A critical examination. International Journal of Research in Human Resources Management.
    https://orcid.org/0009-0000-9047-394

Ihor Virt | Thin Films | Outstanding Scientist Award

Outstanding Scientist Award

Ihor Virt
Drohobych State Pedagogical University of Ivan Franko
Ihor Virt
Affiliation Drohobych State Pedagogical University
Country Ukraine
Scopus ID 7004408178
Documents 94
Citations 684
h-index 13
Subject Area Thin Films
Event World Green Energy Awards
ORCID 0000-0001-7200-6055

Ihor Virt is a researcher associated with Drohobych State Pedagogical University of Ivan Franko and has established a publication record within the field of condensed matter physics and thin-film materials research. His scholarly work has included investigations into semiconductor materials, optical characteristics, and nanostructured systems for scientific applications.[1]

Abstract

This article presents a concise academic profile concerning Ihor Virt and his potential relevance for recognition under the World Green Energy Awards framework. Research activity demonstrates sustained work in semiconductor thin films, optical materials, and nanostructure engineering with applications that intersect energy and materials science disciplines.[2]

Keywords

Thin films, semiconductor physics, pulsed laser deposition, nanostructures, optical materials, zinc oxide coatings, condensed matter physics, materials science.

Introduction

Research associated with thin-film engineering has become increasingly important in modern material technologies. Studies involving optical behavior and semiconductor structures contribute toward understanding material performance and efficiency in scientific and industrial systems.[3]

Research Profile

Available scholarly records indicate publication activity spanning multiple years with indexed research output and citation metrics. Research themes include zinc oxide materials, pulsed laser deposition techniques, and characterization methods for crystalline and semiconductor structures.[4]

Research Contributions

Scientific contributions include studies concerning magnetic behavior, optical responses, thin-film deposition processes, and nanocomposite structures. Such work contributes to broader understanding within material science and supports future development of engineered functional materials.[5]

Publications

Published work associated with Ihor Virt demonstrates continuity in investigations related to thin-film semiconductor materials and deposition technologies. Studies include zinc oxide structures, lead chalcogenide films, optical characterization, and nanostructure behavior under various experimental conditions. Research publications also indicate collaborative scientific activity involving multiple institutions and material science researchers across related areas. Publication trends further reflect sustained participation in peer-reviewed journals and international conference proceedings.[1]

Research Impact

Citation indicators and indexed publication records suggest measurable academic visibility. Scientific outputs involving thin-film materials and semiconductor structures contribute to existing literature supporting both fundamental and applied materials research.[2]

Award Suitability

Consideration for scientific recognition may reasonably involve publication continuity, interdisciplinary contribution, and relevance of research themes. Areas involving functional materials and emerging technologies may align with broader sustainability and technological innovation discussions.[4]

Conclusion

The documented research profile indicates a sustained academic contribution within thin-film and semiconductor research. Scholarly activity demonstrates measurable publication output and ongoing participation in scientific investigations relevant to contemporary materials research.

References

  1. Virt, I. S., Sagan, P., Potera, P., & Yavorskyi, R. (2017). Structural, optical and electrical properties of zinc oxide layers produced by pulsed laser deposition method. Nanoscale Research Letters, 12(1).
    https://doi.org/10.1186/s11671-017-2033-9
  2. Virt, I. S., Tur, Y., Rudyi, I. O., Lopatynskyi, I. Y., Frugynskyi, M. S., Kurilo, I. V., Lusakowska, E., & Witkowski, B. S. (2015). Control of the crystal structure and electrical transport in undoped PbTe films grown by pulsed laser deposition. Journal of Crystal Growth, 428, 51–57.
    https://doi.org/10.1016/j.jcrysgro.2015.09.008
  3. Virt, I., Gamernyk, R., Potera, P., Cieniek, B., & Lozynsky, A. (2022). Transient photoconduction and relaxation photocurrent of ZnO thin films produced by pulsed laser deposition. ECS Journal of Solid State Science and Technology, 11(6).
    https://doi.org/10.1149/2162-8777/ac765f
  4. Virt, I., Potera, P., Wisz, G., Dziedzic, A., Cieniek, B., Lopatynskyi, I., & Frugynskyi, M. (2024). Structural and optical properties of aluminium nitride thin films fabricated using pulsed laser deposition and DC magnetron sputtering on various substrates. Advances in Materials Science, 24(1).
    https://doi.org/10.2478/adms-2024-0001
  5. Bochnowski, W., Żaczek, A., Adamiak, S., Szyller, Ł., Cebulski, J., Kus-Liśkiewicz, M., et al. (2020). Structure and antibacterial properties of Ag and N doped titanium dioxide coatings containing Ti₂.₈₅O₄N phase prepared by magnetron sputtering and annealing. Surface and Coatings Technology, 388.
    https://doi.org/10.1016/j.surfcoat.2020.125844

Zhenmin Ling | Microbiological Biotechnology | Innovative Research Award

Innovative Research Award

Zhenmin Ling
Lanzhou University, China
Zhenmin Ling
Affiliation Lanzhou University
Country China
Scopus ID 56970604900
Documents 41
Citations 1432
h-index 22
Subject Area Microbiological Biotechnology
Event World Green Energy Awards

Zhenmin Ling is associated with Lanzhou University and has contributed to microbiological biotechnology research with emphasis on microbial systems, environmental biotechnology, biomethanation, and microbial interactions. Scholarly output indexed through Scopus indicates notable publication activity and measurable citation impact across interdisciplinary biological research fields.[1]

Abstract

This article presents a concise academic overview of the research profile of Zhenmin Ling and evaluates publication activity, scientific themes, and research visibility. Current records demonstrate engagement in environmental microbiology, biotechnology applications, and microbial metabolism studies that intersect with sustainability and biological engineering approaches.[2]

Keywords

Microbiological biotechnology, microbial metabolism, environmental remediation, biomethanation, gut microbiota, microbial engineering, sustainability research, biotechnology systems.

Introduction

Contemporary microbiological studies increasingly connect biological systems with environmental and technological applications. Research associated with microbial functionality and bioprocess optimization contributes to broader scientific understanding and industrial implementation. Published investigations linked with Zhenmin Ling demonstrate participation in such emerging areas.[3]

Research Profile

Academic records indicate participation in studies involving microbial communities, metabolic mechanisms, heavy metal interactions, and biotechnology development. Citation indicators and indexed publications suggest consistent research engagement and interdisciplinary collaboration across environmental and life science disciplines.[4]

Research Contributions

Research contributions include studies on biomethanation pathways, microbial enzymatic systems, probiotic interactions, and environmental adaptation mechanisms. Several studies examine microbial responses under complex environmental conditions and contribute toward sustainable biotechnology strategies.[5]

Publications

Publication records associated with Zhenmin Ling include work on thermophilic enzymes, microbial reduction mechanisms, gut microbial systems, and protein biomethanation. The research portfolio reflects recurring themes in microbiological biotechnology and environmental biology with collaborative scientific participation across institutions.[1]

Research Impact

Measured impact indicators include more than one thousand citations and an h-index value reflecting sustained scholarly visibility. Citation-based measures should be interpreted together with research quality, collaboration networks, and disciplinary context within biotechnology research environments.

Award Suitability

The research profile aligns with award categories emphasizing sustainable science, biotechnology innovation, and environmental research advancement. Evaluation suitability can be interpreted from publication activity, interdisciplinary contribution, and scientific impact within indexed research systems.

Conclusion

Available academic indicators present a structured picture of ongoing contributions to microbiological biotechnology and related fields. Scholarly output and citation evidence suggest continuing engagement in research addressing biological and environmental challenges.

References

  1. Elsevier. (2026). Scopus author details: Zhenmin Ling, Author ID 56970604900.
    https://www.scopus.com/authid/detail.uri?authorId=56970604900
  2. Fan, J., Wu, Y., Wang, X., Ji, J., & Li, X. (2026). The probiotic enhances donor microbiota stability and improves the efficacy of fecal microbiota transplantation for treating colitis. Journal of Advanced Research.
    https://www.sciencedirect.com/science/article/pii/S2090123225001778
  3. Chen, Y., Ling, Z., Ji, J., Liu, P., & Li, X. (2024). The combination of oxalic acid and uric acid degrading probiotic from traditional Chinese fermented food reduces calcium accumulation and prevents kidney stones formation in rats. Food Bioscience.
    https://www.sciencedirect.com/science/article/abs/pii/S2212429224015293
  4. Khan, A., Wang, W., Ji, J., Kumar Khanal, S., & Li, X. (2024). Fermented lily bulbs by Jiangshui probiotics improves lung health in mice. Food Chemistry.
    https://www.sciencedirect.com/science/article/abs/pii/S0308814623028881
  5. Wang, X., Wang, Z., Su, S., Liu, P., & Li, X. (2024). Probiotics Pediococcus acidilactici GR-1 promotes the functional strains and remodels gut microbiota to reduce Cr(VI) toxicity in a dual-chamber simulated intestinal system. Chemosphere.
    https://www.sciencedirect.com/science/article/abs/pii/S0045653524008208

Stefano Lilla | Smart Grid | Best Researcher Award

Best Researcher Award

Stefano Lilla
University of Bologna, Italy
Research Recognition Profile
Affiliation University of Bologna
Country Italy
Scopus ID 57197784391
Documents 12
Citations 172
h-index 4
Subject Area Smart Grid
Event World Green Energy Awards
ORCID 0000-0002-1333-6983

Stefano Lilla is associated with the University of Bologna and conducts research activities within electrical energy systems, local energy communities, and smart grid optimization frameworks. His scholarly profile includes work on energy management models, distributed optimization methods, and microgrid operational strategies. Current research activities frequently emphasize sustainable electricity infrastructures and practical implementation methods in modern power systems.[1]

Abstract

This article presents a structured overview of the research profile of Stefano Lilla and examines his academic activities related to smart grid technologies and energy system optimization. Existing records indicate involvement in energy communities and distributed energy management approaches. Published studies demonstrate a technical focus on improving operational flexibility and electrical system performance.[2]

Keywords

Smart Grid, Local Energy Communities, Microgrid Management, Energy Optimization, Distributed Systems, Renewable Energy Integration, Power Systems, Electrical Engineering.

Introduction

Modern energy systems increasingly depend on decentralized resources and intelligent management methods. Research within this field often combines computational optimization with practical electrical engineering applications. Such developments contribute toward efficient operation of renewable energy resources and support sustainable power infrastructures.[3]

Research Profile

Stefano Lilla’s documented research profile reflects contributions involving energy management systems and smart distribution frameworks. Academic records show participation in conference papers and journal articles involving distributed scheduling methods. Research activity also extends toward industrial applications and community-based energy systems.[4]

Research Contributions

Documented studies include optimization models for microgrids, alternating direction methods for scheduling, and utility-scale battery investigations. These studies examine practical electrical network challenges and methods for balancing operational efficiency. Research outcomes contribute to broader understanding of flexible and resilient energy systems.[5]

Publications

Published work associated with Stefano Lilla demonstrates continuing engagement with smart grid engineering and energy optimization research. Articles and conference papers have addressed local energy communities, industrial DC microgrids, and distributed decision frameworks. The publication pattern suggests a combination of theoretical development and practical system implementation approaches. Research outputs additionally indicate collaboration across multiple energy engineering disciplines and institutions.[2]

Research Impact

Citation statistics and indexed publications suggest measurable academic visibility within electrical engineering literature. Research impact can also be observed through continuing publication activity and collaborative projects. The practical orientation of the work supports ongoing discussion regarding energy transition strategies.[1]

Award Suitability

Available academic indicators suggest relevance for consideration in research recognition categories related to sustainable energy systems. Assessment of suitability may reasonably include publication activity, subject specialization, and research continuity. Recognition frameworks generally consider these indicators alongside broader scholarly contributions.

Conclusion

The research profile reviewed here presents a concise scholarly overview of Stefano Lilla and his documented work within energy systems engineering. Current evidence indicates continued participation in smart grid and energy optimization research. Future publications may further expand the observed scope of contribution.

References

  1. Elsevier. (n.d.). Scopus author details: Stefano Lilla, Author ID 57197784391.
    https://www.scopus.com/authid/detail.uri?authorId=57197784391
  2. Lilla, S., Orozco, C., Borghetti, A., Napolitano, F., & Tossani, F. (2020). Day-Ahead Scheduling of a Local Energy Community: An Alternating Direction Method of Multipliers Approach. IEEE Transactions on Power Systems, 35(2), 1132-1142.
    https://doi.org/10.1109/TPWRS.2019.2944541
  3. Lilla, S. (2019). Energy Management Systems of Microgrids. University of Bologna Dissertation.
    https://doi.org/10.6092/unibo/amsdottorato/8778
  4. Lilla, S. et al. (2017). Mixed Integer Programming Model for the Operation of an Experimental Low-Voltage Network. IEEE PowerTech.
    https://doi.org/10.1109/PTC.2017.7981175
  5. Lilla, S., Missiroli, M., Borghetti, A., Tossani, F., & Nucci, C.A. (2026). Enhancing Grid Sustainability Through Utility-Scale BESS: Flexibility via Time-Shifting Contracts and Arbitrage. Sustainability, 18.
    https://doi.org/10.3390/su18031404

Massimo Vitelli | Renewable Energy Systems | Best Researcher Award

Best Researcher Award

Massimo Vitelli
University of Campania Luigi Vanvitelli
Massimo Vitelli
Affiliation University of Campania Luigi Vanvitelli
Country Italy
Scopus ID 7004054850
Documents 197
Citations 9000
h-index 35
Subject Area Renewable Energy Systems
Event World Green Energy Awards
ORCID 0000-0003-0315-0891

Massimo Vitelli is associated with the University of Campania Luigi Vanvitelli and has contributed to research activities within renewable energy systems and related technological developments. His publication record, citation metrics, and academic profile demonstrate sustained engagement with scientific research and collaborative investigations in energy engineering and applied systems studies.[1]

Abstract

This article presents an overview of the academic profile and research standing of Massimo Vitelli in relation to the Best Researcher Award consideration process. Scholarly metrics including publication output, citation records, and impact indicators provide quantitative evidence for evaluating scientific contribution and sustained academic productivity.[2]

Keywords

Renewable energy systems, energy engineering, academic impact, Scopus metrics, sustainability research, scientific contributions.

Introduction

Academic recognition programs commonly assess researchers through objective indicators and long-term scholarly influence. Citation measurements, collaboration patterns, and research dissemination activities provide evidence supporting evaluations in international award systems.[3]

Research Profile

The research profile demonstrates engagement with renewable energy systems and multidisciplinary engineering applications. Publication activity indicates continuity in research output while maintaining measurable academic visibility through indexed databases and citations.[1]

Research Contributions

Research activities involve analytical methods and engineering applications associated with sustainable technologies and energy optimization systems. Contributions in this field frequently support knowledge development and technological advancement through peer-reviewed dissemination.[4]

Publications

The publication profile contains journal articles and scientific studies associated with energy systems and engineering applications. Research publications demonstrate continuity of academic participation and collaborative scholarly activity. Indexed documents contribute to citation growth and scientific communication. Publication records are frequently considered significant indicators during research award evaluations.[5]

Research Impact

Research impact is generally measured using citations, h-index values, and dissemination across scholarly platforms. Such metrics support objective evaluation of influence and visibility within academic communities and related scientific disciplines.[2]

Award Suitability

Eligibility for recognition within the World Green Energy Awards may involve assessment of publication quality, impact measurements, and contribution to sustainability research. Available indicators suggest alignment with standard academic evaluation criteria.[1]

Conclusion

The available academic profile information presents a structured overview of research activity and scholarly performance. Quantitative and qualitative indicators collectively support evaluation for research recognition and professional distinction.

References

  1. Elsevier. (n.d.). Scopus author details: Massimo Vitelli (Author ID: 7004054850). Scopus Database.
    https://www.scopus.com/authid/detail.uri?authorId=7004054850
  2. Yaïci, W., & Longo, M. (2025). Performance analysis of domestic boilers fuelled with hydrogen-enriched natural gas blends and pure hydrogen. Energy.
    DOI: https://doi.org/10.1016/j.energy.2025.135536
  3. Miraftabzadeh, S., Longo, M., Di Martino, A., & Zaninelli, D. (2024). Deep learning in power systems: A bibliometric analysis and future trends. IEEE Access.
    DOI: https://doi.org/10.1109/ACCESS.2024.3491914
  4. Martini, D., Longo, M., & Daniel, L. (2025). Smart charging system in a bus depot: Cost-effective strategy. IEEE Access.
    DOI: https://doi.org/10.1109/ACCESS.2025.3606410
  5. Pelosi, D., Longo, M., Zaninelli, D., & Barelli, L. (2023). Experimental investigation of fast-charging effect on aging of electric vehicle Li-ion batteries. Energies.
    DOI: https://doi.org/10.3390/en16186673

Michela Longo Politec | Clean Transportation | Electric Vehicle Innovation Award

Electric Vehicle Innovation Award

Michela Longo
Affiliation Politecnico di Milano
Country Italy
Scopus ID 37023170900
Documents 3867
Citations 4483
h-index 31
Subject Area Clean Transportation
Event World Green Energy Awards
ORCID 0000-0002-3780-4980
Michela Longo – Politecnico di Milano

Michela Longo is associated with research activities focused on electric mobility systems, transportation electrification, charging infrastructure, and sustainable energy applications. Her publication profile demonstrates participation in interdisciplinary studies involving mobility planning and energy optimization methodologies. Research outputs indicate continuous work across transport engineering and renewable integration studies.[1]

Abstract

This article summarizes academic activities related to Michela Longo and her contributions in electric mobility and transportation electrification studies. Research evidence highlights analytical approaches involving infrastructure planning and sustainable mobility transitions. Publication patterns indicate continuing involvement in charging technologies and energy systems integration studies.[2]

Keywords

Electric Vehicles, Smart Charging, Energy Systems, Sustainable Transport, Vehicle-to-Grid, Mobility Infrastructure, Renewable Energy Integration.

Introduction

Recent developments in electric transportation research increasingly combine infrastructure planning with intelligent energy management systems. Studies associated with Michela Longo demonstrate emphasis on practical implementation models and data-supported evaluations. Research themes reflect transportation sustainability requirements and future mobility system design approaches.[3]

Research Profile

Academic activities include studies on charging station deployment, battery systems, transportation planning and electrification models. Research collaborations indicate broad interdisciplinary participation across engineering domains. Publication records additionally reflect work involving smart charging and vehicle-grid interaction frameworks.[4]

Research Contributions

Research contributions are centered around optimization techniques and practical energy applications supporting sustainable transportation objectives. Published studies include infrastructure analysis and mobility planning frameworks designed for modern transportation requirements. Methodological approaches frequently combine analytical modeling with operational assessments.[5]

Publications

Michela Longo has contributed to publications addressing charging systems, vehicle electrification, transport sustainability, and energy management. Research outputs demonstrate collaboration across multiple engineering disciplines and mobility domains. Several publications involve infrastructure optimization and vehicle-grid interaction analysis. Current studies additionally indicate continuing investigation into emerging transportation technologies and sustainable mobility systems.Selected Publication Summary

Research Impact

Research metrics suggest scholarly visibility across transportation and clean energy studies. Citation activity and collaborative publications indicate academic engagement within broader mobility research communities. Existing studies contribute to discussions regarding future transportation systems and sustainable infrastructure planning.

Award Suitability

The Electric Vehicle Innovation Award recognizes developments associated with sustainable transportation and energy efficiency. Available research activities align with areas including electric mobility technologies and infrastructure development. Academic outputs indicate relevance to innovation-focused evaluation criteria.

Conclusion

Research activities associated with Michela Longo illustrate continuing participation within sustainable transportation studies and electric mobility systems research. Publication evidence reflects ongoing work addressing infrastructure and energy integration challenges.

External Links

References

  1. Silvestri, F., & Longo, M. (2026). A spatial and functional analysis of electric vehicle charging infrastructure: A case study of Lombardy. IEEE Access
    https://doi.org/10.1109/ACCESS.2026.3684395
  2. Martini, D., Longo, M., & Daniel, L. (2025). Comprehensive framework for energy consumption estimation in electric vehicles. IEEE Transactions on Intelligent Transportation Systems.
    https://doi.org/10.1109/TITS.2025.3590970
  3. Borgosano, S., Martini, D., Longo, M., & Foiadelli, F. (2024). Electrifying urban transportation: A comparative study of battery swap stations and charging infrastructure for taxis in Chicago
    https://doi.org/10.1109/ACCESS.2024.3379138
  4. Di Martino, A., Prasad, G. S., Foiadelli, F., & Longo, M. (2023). Energy demand model of battery e-buses for local public transport: Implementation, validation and scheduling optimization.
    https://doi.org/10.1109/ACCESS.2023.3280061
  5. Borghetti, F., Longo, M., Bonera, M., Libretti, M., Somaschini, C., Martinelli, V., Medeghini, M., & Mazzoncini, R. (2023). Battery electric buses or fuel cell electric buses? A decarbonization case study in the city of Brescia, Italy. Infrastructures
    https://doi.org/10.3390/infrastructures8120178

Fabrizio Araniti | Botanical Herbicides | Excellence in Research Award

Excellence in Research Award

Fabrizio Araniti – Researcher, Università degli Studi di Milano, Italy

Fabrizio Araniti
Affiliation Università degli Studi di Milano
Country Italy
Scopus ID 35117514500
Documents 143
Citations 4444
h-index 35
Subject Area Botanical Herbicides
Event World Green Energy Awards
ORCID 0000-0002-4983-4116

The Excellence in Research Award recognizes scholarly achievements that contribute to scientific advancement and sustainable innovation. Fabrizio Araniti is an Italian researcher whose work focuses on allelopathy, plant interactions, phytotoxicity, metabolomics, and botanical herbicides. His publication portfolio demonstrates consistent contributions to agricultural and environmental sciences, supporting the development of eco-friendly approaches for crop management and sustainable production systems.[1]

Abstract

This article presents an academic overview of Fabrizio Araniti and evaluates his suitability for recognition through the Excellence in Research Award. His research portfolio encompasses plant physiology, sustainable agriculture, metabolomics, and botanical herbicides. Through interdisciplinary investigations, he has contributed to understanding plant stress responses, natural bioactive compounds, and environmentally responsible agricultural technologies.[1]

Keywords

Allelopathy, Botanical Herbicides, Plant Physiology, Sustainable Agriculture, Metabolomics, Environmental Sciences, Plant Interactions, Green Innovation.

Introduction

Modern agricultural research increasingly emphasizes sustainability, resource efficiency, and environmental protection. Within this context, Fabrizio Araniti has contributed to the study of natural plant compounds and biological interactions that may provide alternatives to conventional chemical inputs. His work aligns with international priorities related to ecological resilience and sustainable crop production.[2]

Research Profile

Araniti is affiliated with the Università degli Studi di Milano and has maintained active research collaborations across multiple scientific disciplines. His ORCID and Scopus records demonstrate extensive scholarly engagement, including publications, peer-review activities, and contributions to international research networks. His work frequently explores plant responses to environmental stress and the application of natural compounds in agriculture.[1]

Research Contributions

Major contributions include investigations into allelopathic interactions, plant metabolomics, epigenetic regulation, and botanical herbicide development. His studies have improved scientific understanding of natural phytotoxic compounds and their potential agricultural applications. These findings support environmentally conscious strategies for weed control and crop management while encouraging sustainable innovation.[3]

Publications

His publication record includes research articles in journals such as Plants, Agronomy, Plant Physiology and Biochemistry, Physiologia Plantarum, and Epigenomes. Recent studies address root exudates, salinity stress, phytoremediation, drought tolerance, and metabolomic responses in plants. These publications demonstrate sustained productivity and engagement with contemporary agricultural challenges.[4]

Research Impact

Research impact may be evaluated through publication output, citation activity, interdisciplinary collaboration, and practical relevance. Araniti’s work has contributed to advancing scientific knowledge in plant sciences and sustainable agriculture. His studies continue to support evidence-based approaches for environmental stewardship and agricultural development.[5]

Award Suitability

The Excellence in Research Award emphasizes scholarly excellence, innovation, and measurable academic contribution. Based on his documented publication activity, international collaborations, and research focus on sustainable agricultural solutions, Fabrizio Araniti demonstrates characteristics commonly associated with academic recognition programs. His contributions align closely with themes promoted by the World Green Energy Awards and related sustainability initiatives.

Conclusion

Fabrizio Araniti’s scholarly profile reflects consistent engagement with plant science, environmental sustainability, and innovative agricultural research. Through extensive publication activity and interdisciplinary collaboration, he has contributed to advancing knowledge in areas relevant to ecological agriculture. These accomplishments provide a strong basis for consideration within academic recognition and research excellence frameworks.

References

  1. ORCID. (2026). Fabrizio Araniti (ORCID: 0000-0002-4983-4116). ORCID Registry.https://orcid.org/0000-0002-4983-4116
  2. Araniti, F., Landi, M., Laudicina, V. A., & Abenavoli, M. R. (2021). Secondary Metabolites and Eco-Friendly Techniques for Agricultural Weed/Pest Management. Plants, 10(7), 1418.
    https://doi.org/10.3390/plants10071418
  3. Zambelli, A., Nocito, F. F., & Araniti, F. (2025). Unveiling the Multifaceted Roles of Root Exudates: Chemical Interactions, Allelopathy, and Agricultural Applications. Agronomy, 15(4).
    https://doi.org/10.3390/agronomy15040845
  4. Verdeguer, M., Sánchez-Moreiras, A. M., & Araniti, F. (2020). Phytotoxic Effects and Mechanism of Action of Essential Oils and Terpenoids. Plants, 9(11), 1571.
    https://doi.org/10.3390/plants9111571
  5. Haghpanah, M., Namdari, A., Kaleji, M. K., Nikbakht-dehkordi, A., Arzani, A., & Araniti, F. (2025). Interplay Between ROS and Hormones in Plant Defense Against Pathogens. Plants, 14(9).
    https://doi.org/10.3390/plants14091297

Iliya Iliev | Energy | Innovative Research Award

Innovative Research Award

Iliya Iliev – Angel Kanchev University of Ruse, Bulgaria

AffiliationAngel Kanchev University of Ruse


Iliya Iliev
Country Bulgaria
Scopus ID 56410563800
Documents 472
Citations 553
h-index 12
Subject Area Energy
Event World Green Energy Awards
ORCID 0000-0003-4443-5113

Iliya Iliev is a Bulgarian academic and energy researcher affiliated with Angel Kanchev University of Ruse. His scholarly activities encompass thermal engineering, renewable energy systems, power engineering, hydrogen technologies, environmental sustainability, energy storage, and advanced energy conversion processes. Over several decades of academic service, he has contributed to both theoretical and applied energy research while participating in international collaborations, editorial activities, and multidisciplinary engineering projects. His publication record demonstrates sustained engagement with contemporary challenges associated with sustainable energy production, power system reliability, and industrial energy efficiency.[1]

Abstract

This article presents an overview of the academic profile and scientific achievements of Iliya Iliev, a researcher recognized for contributions to energy engineering and sustainable technology development. His work spans renewable energy integration, hydrogen utilization, thermal systems optimization, power system reliability, waste heat recovery, and environmental performance assessment. Through extensive publication activity and participation in international scientific collaborations, he has contributed to advancing engineering solutions addressing modern energy challenges. His research demonstrates an interdisciplinary approach that combines modeling, experimentation, and practical implementation within the broader context of sustainable development and energy transition initiatives.[2]

Keywords

Energy Engineering; Renewable Energy; Hydrogen Technologies; Thermal Engineering; Power Systems; Sustainable Development; Energy Storage; Heat Transfer; Environmental Engineering; Green Energy.

Introduction

The global transition toward low-carbon energy systems requires scientific contributions that integrate technological innovation, environmental responsibility, and engineering efficiency. Researchers working in energy-related disciplines play a critical role in developing solutions that support sustainable electricity generation, improved thermal processes, and enhanced resource utilization. Within this context, Iliya Iliev has established a research profile focused on addressing technical and environmental issues associated with modern energy infrastructure. His academic output reflects continued engagement with topics that are relevant to both industry and scientific communities worldwide.[3]

Research Profile

Professor Iliya Iliev has served at Angel Kanchev University of Ruse in various academic positions, including Assistant Professor, Associate Professor, and Full Professor in Heat Engineering. His educational background includes advanced studies in heat engineering, hydraulics, fuel technologies, and energy systems. Beyond institutional responsibilities, he has participated in editorial boards, peer review activities, and international research collaborations involving scholars from Europe and Asia. These engagements have expanded the visibility and impact of his research activities across multiple energy-related disciplines.[1]

Research Contributions

The research contributions of Iliya Iliev encompass a broad range of energy technologies. His studies have addressed hydrogen production and storage, renewable energy integration, microgrid systems, electrochemical processes, power transformer diagnostics, fuel cell performance, waste heat recovery, combustion technologies, and greenhouse gas emission assessment. Several investigations have focused on practical engineering applications, including reliability assessment of power systems, energy storage optimization, and the integration of electric vehicle charging infrastructure. These contributions support the development of resilient, efficient, and environmentally sustainable energy systems.[4]

Publications

The publication portfolio associated with Iliya Iliev includes hundreds of scholarly outputs indexed in international databases. Recent works address power supply system reliability, renewable energy integration in traction systems, hydrogen-fueled gas turbines, solid oxide fuel cell modeling, machine-learning-based infrastructure diagnostics, environmental impact assessment, and innovative thermal engineering solutions. His publications appear in respected journals such as Energy, Energies, Sustainability, Sensors, and Thermal Science, reflecting a sustained commitment to high-quality scientific dissemination.[5]

Research Impact

Research impact may be assessed through publication output, citation activity, collaborative networks, and practical influence on engineering knowledge. With hundreds of indexed documents and a measurable citation record, Iliya Iliev has contributed to scholarly discussions concerning energy sustainability, thermal engineering, and advanced power technologies. His participation in editorial boards and peer-review activities further demonstrates professional recognition within the scientific community. The interdisciplinary nature of his research allows findings to be applied across multiple sectors including electricity generation, transportation, industrial processing, and environmental management.[2]

Award Suitability

The profile of Iliya Iliev aligns with the objectives commonly associated with international green energy recognition programs. His documented work in renewable energy systems, hydrogen technologies, environmental impact reduction, energy efficiency, and power system innovation demonstrates sustained scholarly engagement with sustainability-oriented research themes. The breadth of his publication record, combined with international collaboration and practical engineering applications, provides evidence of meaningful contributions to advancing green energy knowledge and technology. These characteristics support consideration for recognition within the World Green Energy Awards framework.[3]

Conclusion

Iliya Iliev has developed a substantial academic record characterized by research productivity, interdisciplinary collaboration, and sustained engagement with emerging energy challenges. His contributions span theoretical studies, experimental investigations, computational modeling, and practical engineering applications. Through research focused on sustainable energy technologies and environmental performance improvement, he has contributed to scientific knowledge relevant to contemporary energy transition goals. The available evidence indicates a career dedicated to advancing energy engineering research and supporting innovation in green and sustainable technologies.[1]

References

  1. ORCID. (2026). Iliya Iliev (0000-0003-4443-5113) Research Record. ORCID Registry.https://orcid.org/0000-0003-4443-5113
  2. Iliev, I. K., Fedyukhin, A. V., Semin, D. V., Valeeva, Y. S., Dronov, S. A., & Beloev, I. H. (2024). Prospects of Hydrogen Application as a Fuel for Large-Scale Compressed-Air Energy Storages. Energies, 17(2).DOI:
    https://doi.org/10.3390/en17020518
  3. Iliev, I. K., Kryukov, A. V., Suslov, K. V., Cherepanov, A. V., Hieu, N. Q., Beloev, I. H., & Valeeva, Y. S. (2024). Modeling the Operating Conditions of Electric Power Systems Feeding DC and AC Traction Substations. Energies.DOI:
    https://doi.org/10.3390/en17184692
  4. Iliev, I. K., Filimonova, A. A., Chichirov, A. A., Chichirova, N. D., Pechenkin, A. V., & Beloev, I. H. (2023). Development of Hybrid Membrane Systems for Highly Mineralized Waste Utilization in the Power Industry. Energies.DOI:
    https://doi.org/10.3390/en16176166
  5. Iliev, I. K., Beloev, H. I., Ilieva, D. I., & Badur, J. (2022). A Novel Method for Calculating Greenhouse Gas Emissions from the Combustion of Energy Fuels. Archives of Thermodynamics.DOI:
    https://doi.org/10.24425/ATHER.2022.144404

Yoram Krozer | Energy Economics | Innovative Research Award

Innovative Research Award

Yoram Krozer – Academy for Sustainable Innovation, Netherlands

AffiliationAcademy for Sustainable Innovation

Yoram Krozer
Country Netherlands
Scopus ID 55666495600
Documents 555
Citations 596
h-index 11
Subject Area Energy Economics
Event World Green Energy Awards

Yoram Krozer is a researcher associated with the Academy for Sustainable Innovation in the Netherlands and is recognized for his work in sustainability studies, energy economics, environmental policy, and financial modeling. His academic profile demonstrates a consistent commitment to addressing contemporary challenges related to resource efficiency, renewable energy deployment, and sustainable economic development. Through interdisciplinary investigations, he has contributed to discussions on how innovation can support long-term environmental objectives while maintaining economic feasibility and social value.[1]

Abstract

This article presents an overview of the academic contributions of Yoram Krozer and evaluates the relevance of his research activities to contemporary sustainability challenges. His scholarly work focuses on renewable energy systems, environmental economics, sustainable resource management, and innovation-driven policy frameworks. The research profile reflects sustained engagement with multidisciplinary topics that connect environmental protection with economic performance. These contributions provide valuable insights for stakeholders seeking evidence-based solutions in energy transition and sustainable development planning.[2]

Keywords

Sustainability, Renewable Energy, Environmental Economics, Energy Transition, Financial Modeling, Resource Efficiency, Green Innovation, Sustainable Development, Policy Analysis, Climate Action.

Introduction

The transition toward sustainable energy systems has increased demand for rigorous academic research capable of informing public policy and industrial decision-making. Researchers working at the intersection of economics, technology, and environmental science play a significant role in advancing this transition. Yoram Krozer has participated in this evolving research landscape by examining how economic instruments and innovation strategies influence sustainability outcomes. His publications contribute to broader discussions regarding energy security, environmental stewardship, and long-term economic resilience.[3]

Research Profile

According to available scholarly profile information, Yoram Krozer maintains an established research record with documented publications, citations, and measurable academic impact. His work frequently addresses sustainability assessment, distributed energy systems, environmental costs, and economic evaluation methods. The interdisciplinary nature of his research enables the integration of scientific evidence with practical policy recommendations. Such an approach is increasingly valuable in addressing global sustainability challenges that require collaborative and cross-sectoral solutions.[1]

Research Contributions

A notable aspect of Krozer’s scholarship is the examination of renewable energy growth, sustainability metrics, and environmental externalities. His research investigates economic drivers that support cleaner energy adoption while evaluating associated costs and benefits. Additional studies address resource consumption patterns and the environmental consequences of consumer products and infrastructure systems. These contributions strengthen understanding of how sustainability objectives can be integrated into economic and policy frameworks.[4]

Publications

Recent publications associated with the researcher include studies on distributed energy networks, renewable energy growth drivers, and environmental costs linked to bottled water consumption. These works illustrate a continued interest in sustainability-focused topics that combine environmental analysis with economic reasoning. The diversity of publication themes reflects an effort to address practical sustainability concerns from multiple perspectives. Such research remains relevant to current discussions surrounding climate resilience and responsible resource management.[4]

Research Impact

Research impact can be assessed through scholarly visibility, citation performance, and influence on academic discourse. The available metrics indicate that Krozer’s work has been cited across numerous publications, demonstrating engagement from the wider research community. Citation activity suggests that his findings contribute to ongoing debates regarding sustainability, energy economics, and environmental governance. Continued publication activity further supports the relevance of his research portfolio within contemporary academic discussions.[1]

Award Suitability

The World Green Energy Awards recognizes researchers whose work contributes to sustainable innovation and environmental advancement. Krozer’s academic record aligns with these objectives through investigations of renewable energy systems, sustainability assessment methodologies, and environmental-economic interactions. His interdisciplinary approach encourages practical application of scientific knowledge while promoting responsible resource management. These characteristics make his profile suitable for consideration within sustainability-oriented academic recognition programs.[2]

Conclusion

Yoram Krozer’s body of work reflects a sustained commitment to advancing sustainability research through economic analysis, environmental assessment, and innovation studies. His publications address significant challenges facing energy systems and resource management practices in a changing global environment. By combining analytical rigor with practical relevance, his research contributes to informed decision-making across multiple sectors. The overall profile demonstrates meaningful scholarly engagement with issues central to sustainable development and green energy transformation.[3]

References

        1. Elsevier. (2026). Scopus Author Details: Yoram Krozer. Author ID: 55666495600.
          Scopus: https://www.scopus.com/authid/detail.uri?authorId=55666495600
        2. Krozer, Y. (2026). Sustainability of distributed energy networks.
          Sustainability, 18(1), 178.
          https://doi.org/10.3390/su18010178
        3. Krozer, Y. (2025). Growth of renewable energy: A review of drivers from the economic perspective.
          Energies, 18(19), 5250.
          https://doi.org/10.3390/en18195250
        4. Krozer, Y. (2025). How much are we paying for drinking water in (PET) bottles? A global assessment of hidden environmental costs.
          Environmental Challenges, 18, 101118.
          https://doi.org/10.1016/j.envc.2025.101118