Rahim Zahedi | Energy | Best Researcher Award

Best Researcher Award

Rahim Zahedi
University of Tehran

Rahim Zahedi
Affiliation University of Tehran
Country Iran
Google Scholar ID uMoggwwAAAAJ
Documents 168
Citations 5,188
h-index 38
Subject Area Energy
Award Best Researcher Award
Event International Invention Awards
ORCID 0000-0001-6837-8729

Rahim Zahedi is a researcher affiliated with the University of Tehran, Iran, whose identified subject area is energy. His academic profile reports 168 documents, 5,188 citations, and an h-index of 38. These indicators provide quantitative context for assessing research productivity and scholarly visibility. His profile is presented in connection with the Best Researcher Award at the International Invention Awards, recognizing documented academic activity and research contributions.
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Abstract

Rahim Zahedi is a researcher affiliated with the University of Tehran whose identified subject area is energy. His supplied academic profile reports 168 documents, 5,188 citations, and an h-index of 38, indicating sustained scholarly activity and measurable citation visibility. This article presents his research profile in relation to the Best Researcher Award associated with the International Invention Awards. The assessment considers publication activity, research contributions, scholarly impact, and academic suitability for recognition. Quantitative indicators are used as supporting evidence rather than definitive measures of research quality. A comprehensive evaluation should also consider originality, methodological rigor, relevance, authorship, and documented contributions to energy research and innovation.

Keywords

Rahim Zahedi; University of Tehran; Energy Research; Researcher; Best Researcher Award; International Invention Awards; Research Productivity; Scholarly Impact; Citation Analysis; h-index.

Introduction

Academic recognition generally considers research productivity, scholarly quality, disciplinary contribution, and influence within the research community. Rahim Zahedi is identified with the University of Tehran and the energy research field. His reported publication and citation indicators provide a quantitative foundation for describing his academic activity. However, bibliometric measures are most appropriately interpreted alongside qualitative evidence concerning originality, research methodology, relevance, and contribution to knowledge. [1] [2]

Research Profile

Rahim Zahedi’s supplied academic information identifies the University of Tehran as his institutional affiliation and Iran as his country. His research subject area is energy, with a reported record of 168 documents, 5,188 citations, and an h-index of 38. These figures describe a substantial level of documented scholarly activity and provide measurable context for reviewing his academic profile. [1]

Research Contributions

The research profile of Rahim Zahedi is situated within the broad field of energy research. Academic contributions in this area may address scientific analysis, energy systems, technological development, efficiency, sustainability, or related applications. A detailed evaluation of specific contributions requires examination of the underlying publications and research outputs, including their methodology, originality, relevance, and influence within the scientific literature.

Publications

The supplied profile reports 168 documents associated with Rahim Zahedi. This figure indicates sustained scholarly publication activity. Publication quantity alone does not determine academic quality, and appropriate evaluation should also consider the significance of individual studies, authorship contribution, research methodology, publication venues, originality, and relevance. Persistent researcher identifiers such as ORCID can assist in accurately associating scholarly outputs with individual researchers. [3]

Research Impact

The reported citation count of 5,188 and h-index of 38 provide quantitative measures of scholarly visibility. The h-index is designed to combine publication productivity and citation impact into a single indicator, although its interpretation differs between disciplines and career stages. [2] Accordingly, these values should be treated as contextual indicators and considered together with qualitative evidence concerning the researcher’s substantive academic contributions.

Award Suitability

The supplied academic profile provides several measurable indicators relevant to consideration for the Best Researcher Award. Rahim Zahedi’s affiliation with the University of Tehran, specialization in energy, reported publication record, citation count, and h-index collectively establish a documented scholarly profile. Final award evaluation should additionally consider verified research outputs, originality, scientific quality, contribution to the field, and the formal assessment criteria applied by the International Invention Awards.

Conclusion

Rahim Zahedi, affiliated with the University of Tehran, has a supplied academic profile reflecting sustained research activity in the energy field. The reported record of 168 documents, 5,188 citations, and an h-index of 38 provides quantitative context for evaluating his scholarly visibility. These indicators can support consideration for the Best Researcher Award, while a complete assessment should incorporate qualitative evidence concerning research originality, rigor, relevance, and contribution to the scientific community.

References

  1. Google Scholar. (n.d.). Rahim Zahedi, Author ID uMoggwwAAAAJ. Google Scholar author profile.
    https://scholar.google.com/citations?hl=en&user=uMoggwwAAAAJ
  2. Journal article. (2025).Technical and economic analysis of hydrogen production from pre combustion carbon capture by Rectisol process in combined cycle power plant..
    https://doi.org/10.1016/j.enconman.2025.120290
  3. ORCID. (n.d.). Rahim Zahedi, ORCID record 0000-0001-6837-8729.
    https://orcid.org/0000-0001-6837-8729
  4. Journal article. (2026).Enhancing power, water and biofuel multigeneration system through developed biomass-driven hybrid process with energy, exergy, economic and environmental (4E) analysis.
    https://doi.org/10.1016/j.renene.2025.124131
  5. International Invention Awards. (2026.). International Invention Awards official website.
    https://inventionawards.org/

 

Ms. Chia Min Ho | Environmental Engineering | Best Researcher Award

Ms. Chia Min Ho | Environmental Engineering | Best Researcher Award

Beihang University, Malaysia.

Prof. Ho Chia Min is a dedicated researcher and academic specializing in Environmental Engineering, Materials Science, and Sustainable Materials. With expertise in structural engineering, he focuses on developing innovative materials for construction and environmental sustainability. Currently pursuing a PhD in Environmental Science (Materials Science and Engineering) at Beijing Aeronautics and Astronautics University, China, he has a strong academic background and professional experience in research and industry. His work has been recognized through multiple publications in high-impact journals, contributing significantly to the advancement of eco-friendly and high-performance construction materials.

Profile

Scopus
Google Scholar

πŸŽ“ Education

Ms. Chia Min Ho is an emerging researcher in environmental science and materials engineering, currently pursuing a Ph.D. in Environmental Science (Materials Science and Engineering) at Beijing Aeronautics and Astronautics University, China (2024 – Present). She holds a Master of Science in Civil Engineering (Materials and Structures) from University Malaysia Pahang (2021 – 2023) and a Bachelor’s Degree (Hons) in Civil Engineering from the same university (2017 – 2021). Her academic journey began with a Diploma in Civil Engineering from Polytechnic Sultan Salahuddin Abdul Aziz Shah, Malaysia (2014 – 2017). With a strong foundation in civil and materials engineering, her research interests focus on sustainable construction materials, structural performance, and environmental-friendly innovations in engineering.

πŸ’Ό Experience

Ms. Chia Min Ho is a dedicated Civil and Structural Engineer with experience in both industry and research. She has been working at Brown Consulting Pte Ltd, Singapore from October 2022 to September 2024, where she specializes in designing and analyzing structural systems for commercial and residential projects. Her role involves conducting site assessments, ensuring compliance with safety and building codes, and preparing technical reports and presentations for clients.

Before this, she served as a Research Assistant at University Malaysia Pahang, Malaysia from October 2021 to October 2022. During this time, she contributed to research in structural engineering and material science, developing testing methodologies, analyzing experimental data, and assisting in the publication of research findings. Her combined experience in both practical engineering and academic research makes her a well-rounded professional in the field of civil and structural engineering.

πŸ”¬ Research Interests

Environmental Engineering – Sustainable construction materials and eco-friendly practices

Materials Engineering – Development of high-performance and durable building materials

Sustainable Materials – Utilizing industrial byproducts like steel slag in cement and concrete applications

Structural Engineering – Evaluating material performance under extreme conditions (elevated temperatures, water absorption, etc.)

πŸ† Awards & Honors

Young Researcher Excellence Award – Recognized for outstanding contributions to environmental and materials engineering research

Best Paper Award – Awarded for innovative research on cement replacement using steel slag

Top 10 Emerging Scientists in Materials Engineering – Recognized for advancements in sustainable materials

πŸ“š Selected Publications

1️⃣ Ho, C. M., Doh, S. I., Chin, S. C., & Li, X. (2024). The effect of particle sizes of steel slag as cement replacement in high strength concrete under elevated temperatures. Construction and Building Materials, 411, 134531.Β (Cited by: 0)

2️⃣ Ho, C. M., Doh, S. I., Chin, S. C., & Li, X. (2023). Prediction of concrete residual compressive strength under elevated temperatures: Response surface methodology (RSM) approach. Materials Today: Proceedings. (Cited by: 0)

3️⃣ Ho, C. M., Doh, S. I., Jing, G., Chin, S. C., & Li, X. (2023, May). Investigation of superplasticizer dosage on fresh and hardened properties of steel slag mortar. AIP Conference Proceedings, 2688(1). Β (Cited by: 0)

4️⃣ Ho, C. M., Doh, S. I., Li, X., Chin, S. C., & Ashraf, T. (2022). RSM-based modelling of cement mortar with various water-to-cement ratio and steel slag content. Physics and Chemistry of the Earth, 128, 103256. (Cited by: 3)

5️⃣ Ho, C. M., Doh, S. I., Al-Btoush, A. M., Li, X., & Chin, S. C. (2022). The impact of alkali activator dosage on the compressive strength and water absorption of steel slag concrete. Materials Today: Proceedings, 51, 1323-1326. (Cited by: 2)

Prof. Dr. Chao Lyu | Energy | Best Researcher Award

Prof. Dr. Chao Lyu | Energy | Best Researcher Award

Harbin Institute of Technology, China.

Prof. Chao Lyu is a distinguished scholar and researcher in electrical engineering, specializing in battery modeling, battery health management, and microgrid optimization. He is a Professor and Doctoral Supervisor at the Harbin Institute of Technology and a Senior Member of IEEE. With a strong academic background and over 50 research publications in international journals and conferences, Prof. Lyu has made significant contributions to the field of energy storage systems and lithium-ion battery technology. His expertise extends to fault diagnosis, performance evaluation, and optimization control methods for energy storage batteries, shaping advancements in sustainable energy solutions.

Profile

Scopus

Google Scholar

πŸŽ“ Education

Prof. Chao Lyu holds a strong academic foundation in electrical engineering. He earned his B.Eng. in Electrical Engineering from Northeast Electric Power University, Jilin, China, in 2001, followed by an M.Sc. in Electrical Engineering from the same institution in 2004. His pursuit of advanced research led him to complete a Ph.D. in Electrical Engineering at Harbin Institute of Technology, China, in 2007. His academic journey has equipped him with extensive expertise in battery modeling, energy storage systems, and microgrid optimization, laying the groundwork for his impactful research and contributions to the field.

πŸ’Ό Professional Experience

Prof. Chao Lyu is a Professor and Doctoral Supervisor at Harbin Institute of Technology, where he leads research in battery modeling, energy storage systems, and microgrid optimization. As a Senior Member of IEEE, he actively contributes to advancements in electrical engineering and battery technology. Beyond academia, he serves as a researcher and consultant, collaborating with State Grid Corporation of China and Guangdong Power Grid Co., Ltd on industry-driven projects focused on battery fault diagnosis, performance evaluation, and optimization control. His work bridges the gap between research and real-world applications, driving innovation in sustainable energy solutions.

πŸ”¬ Research Interests

Battery Modeling & Testing πŸ”‹

Battery Health Management & Fault Diagnosis ⚑

Microgrid Optimization with Energy Storage 🏭

Lithium-ion Battery Performance & Safety πŸ”

Artificial Intelligence for Battery Management πŸ€–

πŸ† Awards & Recognitions

Senior Member, IEEE

Recognized Expert in Battery Technology & Microgrid Systems

πŸ“š Selected Publications

Early Internal Short Circuit Diagnosis for Lithium-Ion Battery Packs Based on Dynamic Time Warping of Incremental Capacity – Batteries, 10(11), 378

Concurrent Multi-Fault Diagnosis of Lithium-Ion Battery Packs Using Random Convolution Kernel Transformation and Gaussian Process Classifier – Energy, 306, 132467 (3 citations)

Model-Free Detection and Quantitative Assessment of Micro Short Circuits in Lithium-Ion Battery Packs Based on Incremental Capacity and Unsupervised Clustering – International Journal of Electrochemical Science, 19(10), 100794 (1 citation)

Digital Twin Modeling Method for Lithium-Ion Batteries Based on Data-Mechanism Fusion Driving – Green Energy and Intelligent Transportation, 3(5), 100162 (3 citations)

Optimization of Lithium-Ion Battery Charging Strategies From a Thermal Safety Perspective – IEEE Transactions on Transportation Electrification, 10(2), pp. 2727–2739

 

 

 

Dr. Young Hun Jeong | Energy Harvesting | Best Researcher Award

Dr. Young Hun Jeong | Energy Harvesting | Best Researcher Award

Korea Institute of Ceramic Engineering and Technology, South Korea.

Dr. Young Hun Jeong is a Chief Researcher at the Electronic Convergence Materials Division of the Korea Institute of Ceramic Engineering and Technology. He specializes in piezoelectric sensors, actuators, acoustics, and energy harvesting, with a particular focus on wearable and flexible piezoelectrics for bio-sensors. His expertise extends to infrared sensor development, nano-architecture, and microwave dielectric thin-film growth. Young Hun is a highly skilled researcher proficient in designing high-k and low-k thin films for capacitors, PTCR materials, and advancing microwave dielectric materials for next-generation applications.

Profile

Scopus

Education πŸŽ“

Young Hun Jeong holds a degree in Materials Science with a specialization in electronic materials. His academic foundation has empowered him to push the boundaries of materials innovation, particularly in the areas of piezoelectrics and energy harvesting technologies.

Experience πŸ› οΈ

With a proven track record, Young Hun has contributed significantly to over 21 ongoing research projects and 3 industry consultancy projects. He has developed key technologies and methodologies, such as the two-dimensionally dispersed templated grain growth (2DD TGG) technique, which has advanced the performance of piezoelectric materials. He is also a contributor to numerous patents (52 published) and has co-authored 57 SCI journal articles, solidifying his role as a leader in energy harvesting and sensing technologies.

Research Interests πŸ”¬

Piezoelectric Sensors & Actuators

Young Hun Jeong enhances piezoelectric sensors and actuators for better efficiency and sensitivity in industrial and medical applications.

Acoustics and Energy Harvesting

His work in acoustics and energy harvesting focuses on capturing ambient energy for self-powered systems and sensors.

Wearable and Flexible Piezoelectrics for Bio-sensors

Jeong innovates in wearable and flexible piezoelectrics, advancing bio-sensor technologies for health monitoring and diagnostics.

Infrared Sensors and Nano-Architecture

He develops infrared sensors and nano-architecture for applications in environmental monitoring, security, and healthcare.

Microwave Dielectric Thin Film Growth & Characterization

Jeong contributes to microwave dielectric thin films, improving materials for communication systems and radar technologies.

High-k & Low-k Thin Films for Capacitors

His research on high-k and low-k thin films improves capacitor performance, enhancing energy storage in electronic devices.

PTCR Materials

Jeong advances PTCR materials for temperature sensing and self-regulating systems in energy management.

Microwave Dielectric Materials

His work on microwave dielectric materials supports high-frequency systems like 5G and satellite communications.

Impact on Sectors

His research impacts sensing technologies, bioelectronics, and energy harvesting, driving innovation in self-sustaining systems and wearable tech.

Publications Top Notes πŸ“š

Low-temperature sintered 0.5Pb(Ni1/3Nb2/3)O3–0.16PbZrO3–0.34PbTiO3 piezoelectric textured ceramics by Li2CO3 addition

Authors: Cho, S.W., Na, Y.-H., Baik, J.M., Park, K.-I., Jeong, Y.H., Published: 2024, Journal of the American Ceramic Society, Citations: 3. Link

Piezoelectric Pb(Ni,Nb)O3-Pb(Zr,Ti)O3 multilayer ceramics using Cu-Ag electrodes reduced by hydrazine solution treatment

Authors: Lee, M.-S., Jeong, Y.H., Published: 2024, Materials Today Communications, Link

Enhanced energy harvesting performance of piezoelectric cantilever using (Bi,Sm)ScO3-PbTiO3 ceramics textured by microstructural engineering, Authors: Lee, M.-S., Song, H.-C., Jeong, Y.H., Published: 2024, Materials Letters, Citations: 2. Link

Phase transition behavior and electrical properties of (Bi0.97Sm0.03)ScO3-PbTiO3 textured ceramics MPB-modified by BaTiO3 templates for high temperature piezoelectric device applications, Authors: Lee, M.-S., Jeong, Y.H., Published: 2023, Ceramics International, 49(23), Citations: 2. Link

Effects of Sm-substitution on dielectric, ferroelectric, and piezoelectric properties of 0.36(Bi1-xSmx)ScO3-0.64PbTiO3 ceramics

Authors: Cho, S.W., Baik, J.M., Jeong, Y.H., Published: 2023, Ceramics International, 49(2), Link