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

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