Elyes Jbira | Nanomaterials for Energy | Research Excellence Award

Dr. Elyes Jbira | Nanomaterials for Energy | Research Excellence Award

Doctor Researcher, Laboratory of Intelligent Networks and Nanotechnology, National School of Advanced Sciences and Technologies of Borj-Cédria | Tunisia

Dr. Elyes Jbira is an emerging researcher with focused contributions to contemporary scientific research, reflected through 5 peer-reviewed documents indexed in Google Scholar and a growing scholarly impact of 51 citations, with an h-index of 2 and i10-index of 2. His research work centers on advancing knowledge in specialized interdisciplinary domains, emphasizing original research articles, conference publications, and applied research outcomes. Dr. Elyes Jbira’s scholarly contributions demonstrate methodological rigor and relevance, addressing current scientific challenges through analytical and experimental approaches. His research outputs have contributed to measurable academic visibility and citation impact, indicating recognition within the research community. In addition to journal and conference publications, his work aligns with innovation-driven research themes and knowledge dissemination, supporting ongoing R&D activities and future translational potential. Overall, Dr. Elyes Jbira’s research profile reflects a promising academic trajectory with consistent contributions to peer-reviewed literature, citation growth, and engagement in impactful research activities at the early-to-mid stage of his scholarly career.

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Featured Publications

Sayyar Ali Shah | Nanomaterials for Energy | Research Excellence Award

Assoc. Prof. Dr. Sayyar Ali Shah | Nanomaterials for Energy | Research Excellence Award

Professor | Jiangsu University of Science and Technology | China

Assoc. Prof. Dr. Sayyar Ali Shah is a highly cited researcher in nanomaterials and energy-related materials science, with 2,275 citations across 67 peer-reviewed publications (h-index 29, i10-index 42). His research focuses on the design, synthesis, and mechanistic understanding of advanced nanocomposites for electrocatalytic and photocatalytic hydrogen evolution, oxygen evolution, overall water splitting, and energy conversion and storage technologies. He has made significant contributions to metal–carbon hybrids, transition-metal dichalcogenides, graphene-based composites, and heterojunction catalysts, combining experimental materials engineering with theoretical insights into catalytic mechanisms. His work is widely published in high-impact Q1 journals and selected scholarly reviews, demonstrating strong citation impact and international recognition. Assoc. Prof. Dr. Sayyar Ali Shah has led and contributed to competitive, externally funded research projects, translating fundamental nanoscience into scalable R&D outcomes for sustainable energy applications. He is actively engaged in scientific innovation, serves as an editor for themed journal issues, reviews for leading international journals, and contributes to conference leadership, advancing global research in catalysis and functional nanomaterials.

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Hongcai Gao | Nanomaterials for Energy | Research Excellence Award

Prof. Dr. Hongcai Gao | Nanomaterials for Energy | Research Excellence Award

Professor | Beijing Institute of Technology | China

Prof. Dr. Hongcai Gao is a highly cited energy materials scientist with over 12,440 Google Scholar citations, an h-index of 54, an i10-index of 74, and 105+ peer-reviewed publications. His research focuses on electrochemical energy storage, including lithium-ion, sodium-ion, potassium-ion, and solid-state batteries, with strong emphasis on cathode and anode materials, electrolytes, interfacial chemistry, and high-entropy material design. He has delivered influential research outcomes published in top-tier journals such as Advanced Energy Materials, Energy Storage Materials, Nano Energy, Chemical Engineering Journal, ACS Applied Materials & Interfaces, and Journal of Materials Chemistry A. Prof. Dr. Hongcai Gao has contributed to national and regional competitive research projects, generated high-impact R&D innovations, and co-authored authoritative book chapters on electrochemical energy storage. His work has significantly advanced multielectron redox chemistry, interfacial stabilization strategies, and scalable battery technologies. He is consistently recognized among the World’s Top 2% Scientists, serves on editorial boards, acts as a reviewer for leading journals, and plays an active role in international conferences and scientific innovation leadership.

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Featured Publications

Low-cost high-energy potassium cathode
– Journal of the American Chemical Society, 2017 | Ciations: 572

Kumud Malika Tripathi | Nanomaterials for Energy | Excellence in Research Award

Dr. Kumud Malika Tripathi | Nanomaterials for Energy | Excellence in Research Award

Ramalingaswami Faculty | Indian Institute of Technology (IIT) | India

Dr. Kumud Malika Tripathi is a leading nanotechnology researcher whose work spans green hydrogen production, carbon capture and utilization (CCUS), environmental remediation, biosensing technologies, and advanced nano-carbon materials. With more than 5,138 scopus citations, a strong 42 h-index, and over 100 peer-reviewed publications, she has established an international reputation for pioneering sustainable nanomaterials and carbon-based functional systems. Her research contributions center on the design of biomass-derived carbon nanostructures, including graphene aerogels, carbon nano-onions, carbon quantum dots, and hybrid heterostructures. These materials underpin breakthroughs in visible-light photocatalysis, wastewater treatment, degradation of emerging pollutants, flexible electronics, self-charging power units, and high-performance energy storage devices such as zinc-ion hybrid supercapacitors and zinc-air batteries. Her work has significantly advanced green routes for producing nano-carbons from waste sources, demonstrating strong circular-economy impact in environmental and energy applications. Dr. Kumud Malika Tripathi’s research group has made influential contributions to non-invasive disease diagnostics, particularly through graphene-quantum-dot-based optical sensors and FRET-based platforms for detecting biomarkers, gases, and trace analytes. She has authored multiple high-impact publications in journals such as Chemical Engineering Journal, Nanoscale, ChemComm, ACS Sustainable Chemistry & Engineering, Carbon, and Scientific Reports. Her innovations extend to patents on metal-air battery electrolytes, photocatalysts, flexible batteries, wastewater bioremediation, and graphene-based heterostructures, reflecting strong translational and R&D capabilities. A consistent recipient of prestigious research recognitions, she has been honored with RSC Emerging Investigator recognition, RSC Excellent Women Researcher awards, and the Ramalingaswami Re-entry Fellowship, among others. She has delivered invited talks across premier institutes and international conferences, and she serves as Associate Editor for several journals while reviewing extensively for ACS, RSC, Elsevier, Wiley, and Nature group journals. Her funded research projects-supported by DST, DBT, OIL India, Ministry of Coal, NRF-Korea, and others-focus on CO₂ conversion, biosensing, nano-carbon synthesis, pollution remediation, and renewable energy technologies. Through impactful publications, patents, collaborative projects, and editorial contributions, Dr. Kumud Malika Tripathi has become a prominent global figure in sustainable nanomaterials and advanced carbon technologies.

Profiles: Scopus | ORCID | Google Scholar | ResearchGate | Sci Profiles

Featured Publications

1. Tyagi, A., Tripathi, K. M., Singh, N., Choudhary, S., & Gupta, R. K. (2016). Green synthesis of carbon quantum dots from lemon peel waste: applications in sensing and photocatalysis. RSC Advances, 6(76), 72423–72432. https://doi.org/10.1039/C6RA10488F

2. Das, G. S., Shim, J. P., Bhatnagar, A., Tripathi, K. M., & Kim, T.-Y. (2019). Biomass-derived carbon quantum dots for visible-light-induced photocatalysis and label-free detection of Fe(III) and ascorbic acid. Scientific Reports, 9, 15084. https://doi.org/10.1038/s41598-019-49266-y

3. Tyagi, A., Tripathi, K. M., & Gupta, R. K. (2015). Recent progress in micro-scale energy storage devices and future aspects. Journal of Materials Chemistry A, 3(45), 22507–22541. https://doi.org/10.1039/C5TA05666G

4. Tripathi, K. M., Kim, T.-Y., Losic, D., & Tung, T.-T. (2016). Recent advances in engineered graphene and composites for detection of volatile organic compounds (VOCs) and non-invasive disease diagnosis. Carbon, 110, 97–129. https://doi.org/10.1016/j.carbon.2016.08.040

5. Santhosh, C., Daneshvar, E., Tripathi, K. M., Baltrėnas, P., Kim, T.-Y., Baltrėnaitė, E., & Bhatnagar, A. (2020). Synthesis and characterization of magnetic biochar adsorbents for the removal of Cr(VI) and Acid orange 7 dye from aqueous solution. Environmental Science and Pollution Research, 27(26), 32874–32887. https://doi.org/10.1007/s11356-020-09275-1

Amel Boudjemaa | Nanomaterials for Energy | Women Researcher Award

Dr. Amel Boudjemaa | Nanomaterials for Energy | Women Researcher Award

Researcher, Center for Scientific and Technical Research in Physicochemical Analysis (CRAPC), Algeria

Dr. Amel Boudjemaa is a prolific Algerian researcher at the Centre de Recherche Scientifique et Technique en Analyses Physico-Chimiques (CRAPC), Bou Ismail, Algeria. Her scientific contributions lie primarily in photocatalysis, nanomaterials, surface chemistry, and environmental remediation. With a Scopus h-index of 20, 1,467 citations, and 90 peer-reviewed publications, her work has significantly influenced the fields of materials chemistry and sustainable environmental technologies. Her recent research focuses on the design and optimization of advanced nanostructured photocatalysts for water purification, pollutant degradation, and hydrogen generation under visible light. Notably, she has investigated heterojunction and doped oxide-based photocatalysts—such as Co₂SnO₄/Co₃O₄/SnO₂, ZnO–CuO–Al₂O₃, and Bi/Fe-doped aluminophosphates—demonstrating enhanced degradation efficiencies for pharmaceuticals and dyes like diclofenac, ibuprofen, and methyl orange. These studies integrate experimental synthesis, photochemical characterization, and mechanistic modeling to predict by-product toxicity and reaction kinetics, emphasizing both efficiency and environmental safety. Beyond photocatalysis, Dr. Amel Boudjemaa has explored hybrid and functional nanomaterials with applications in sensing, adsorption, and energy storage. Her works on platinum(IV)-carbon sphere hybrids and tin-based non-enzymatic sensors have expanded the potential of nanomaterials for electrochemical detection and clean energy technologies. Methodologically, her research combines advanced materials synthesis, surface modification, spectroscopic and electrochemical analysis, and computational prediction tools. Her interdisciplinary approach bridges materials science, environmental engineering, and green chemistry, contributing to cleaner production and pollution mitigation strategies. Overall, Dr. Amel Boudjemaa’s body of work demonstrates a consistent pursuit of innovative, sustainable solutions for environmental contaminants, positioning her among the leading North African researchers in applied photocatalysis and nanomaterial-based remediation.

Profile: Scopus | ORCID | Google Scholar | ResearcheGate | Loop | Web of Science | Linkedin

Featured Publications

Boumaza, S., Boudjemaa, A., Bouguelia, A., Bouarab, R., & Trari, M. (2010). Visible light induced hydrogen evolution on new hetero-system ZnFe₂O₄/SrTiO₃. Applied Energy, 87(7), 2230–2236.

Boudjemaa, A., Boumaza, S., Trari, M., Bouarab, R., & Bouguelia, A. (2009). Physical and photo-electrochemical characterizations of α-Fe₂O₃: Application for hydrogen production. International Journal of Hydrogen Energy, 34(10), 4268–4274.

Chezeau, B., Boudriche, L., Vial, C., & Boudjemaa, A. (2020). Treatment of dairy wastewater by electrocoagulation process: Advantages of combined iron/aluminum electrodes. Separation Science and Technology, 55(14), 2510–2527.

Boumaza, S., Boudjemaa, A., Omeiri, S., Bouarab, R., Bouguelia, A., & Trari, M. (2010). Physical and photoelectrochemical characterizations of hematite α-Fe₂O₃: Application to photocatalytic oxygen evolution. Solar Energy, 84(4), 715–721.

Boudjemaa, A., Bouarab, R., Saadi, S., Bouguelia, A., & Trari, M. (2009). Photoelectrochemical H₂-generation over spinel FeCr₂O₄ in X²⁻ solutions (X²⁻ = S²⁻ and SO₃²⁻). Applied Energy, 86(7–8), 1080–1086.

 

Prof. Dr. Pengfei Cao | Polymer electrolytes | Best Researcher Award

Prof. Dr. Pengfei Cao | Polymer electrolytes | Best Researcher Award

Prof. Dr. Pengfei Cao, Beijing University of Chemical Technology, China

🎓🔬 Pengfei Cao is a Professor at the School of Materials Science and Engineering, Beijing University of Chemical Technology (since 2022). With a Ph.D. from Case Western Reserve University, he has spearheaded research in synthetic elastomers, polymer electrolytes, and recyclable materials. Previously, he served as a Staff Scientist at Oak Ridge National Laboratory. Prof. Cao has authored over 110 publications, holds nine international patents, and led numerous high-impact projects in advanced polymer science. Recognized globally, his accolades include the ACS Rising Star in Materials Science Award and the R&D 100 Award. His work promotes innovation in sustainable materials. 🌱✨

Professional Profile:

Scopus

Summary of Suitability

Prof. Pengfei Cao exemplifies the qualities of a Best Researcher Award recipient through his trailblazing research, global recognition, and dedication to advancing sustainable materials science. His interdisciplinary innovations and leadership roles significantly contribute to academia and industry, making him an exceptional candidate for this honor.

Education and Experience

  • 🎓 Ph.D. in Macromolecular Science and Engineering, Case Western Reserve University, USA (2015)
  • 🎓 M.S. in Polymer Chemistry and Physics, Tianjin University, China (2010)
  • 🎓 B.E. in Applied Chemistry, Tianjin University, China (2008)
  • 🧪 Professor, Beijing University of Chemical Technology (since 2022)
  • 🧬 Staff Scientist, Oak Ridge National Laboratory (2019–2022)
  • 🧪 Postdoctoral Research Associate, Oak Ridge National Laboratory (2016–2018)

Professional Development

🔗📚 Prof. Pengfei Cao has demonstrated leadership in polymer science with significant contributions to elastomers, polymer electrolytes, and recyclable materials. As a prolific researcher, he has published 116 journal articles and holds nine international patents. He serves as an editor for Macromolecules and MRS Communications, enhancing global discourse in materials science. His mentorship of postdoctoral researchers emphasizes developing innovative, sustainable solutions. Supported by grants from prestigious institutions, Prof. Cao’s work integrates advanced polymer synthesis with applications in self-healing materials, energy storage, and climate-resilient technologies, fostering environmental stewardship and academic excellence. 🌍💡

Research Focus

🔍🔋 Prof. Cao’s research revolves around energy-applied synthetic elastomers and sustainable polymers:

  • Self-healing and recyclable elastomers for environmental sustainability ♻️
  • Solid polymer electrolytes for advanced energy storage technologies ⚡
  • Passive radiative cooling materials for climate-friendly solutions 🌡️
    He prioritizes interdisciplinary innovation, merging materials chemistry, polymer engineering, and sustainable practices to develop low-carbon, high-performance materials. His work aims to redefine the field of polymer science with applications in energy systems, adhesives, and bio-based foam insulations, supporting a greener, more resilient future. 🌱🔬

Awards and Honors

  • 🏆 ACS Rising Star in Materials Science (2023)
  • 🥇 ACS-PMSE Young Investigator Award (2021)
  • 🎖️ R&D 100 Award (2021)
  • 🌟 Recognized for groundbreaking contributions in polymer science and sustainable materials.

Publication Top Notes:

  • Semi-Interpenetrating Polyurethane Network with Fatigue Elimination and Upcycled Mechanical Performance 🧪📘
    Cited by: 4.
  • Simultaneous Acceleration of Sulfur Reduction and Oxidation on Bifunctional Electrocatalytic Electrodes for Quasi-Solid-State Zn–S Batteries ⚡🔋
    Cited by: 5.
  • In-Situ Formation of Quasi-Solid Polymer Electrolyte for Wide-Temperature Applicable Li-Metal Batteries 🔬🌡️
    Cited by: 4.
  • Hybrid Dynamic Covalent Network-Based Protecting Layer for Stable Li-Metal Batteries 🛡️🔋
    Cited by: 2.