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.

 

Linzhuang Xing | Nanomaterials for Energy | Best Researcher Award

Assoc. Prof. Dr. Linzhuang Xing | Nanomaterials for Energy | Best Researcher Award

Xidian University | China

Assoc. Prof. Dr. Linzhuang Xing, a distinguished Associate Professor at the School of Advanced Materials and Nanotechnology, Xidian University, China, has made substantial contributions to nanotechnology, photothermal conversion, and advanced energy materials through over a decade of interdisciplinary research. His work primarily focuses on nanofluids, plasmonic and magnetic nanocomposites, and functional ceramics for applications in solar energy harvesting, thermal management, and piezoelectric and dielectric systems. Among his significant contributions are studies on the performance and mechanism of plasmonic-magnetic Fe₃O₄–Au nanocomposites for enhanced light absorption and solar-driven interfacial steam generation, the thermal performance of composite phase change materials integrated in all-weather solar interfacial evaporation systems, and Fe₃O₄/Au@SiO₂ nanocomposites with recyclable and wide spectral photo-thermal conversion for direct absorption solar collectors, which have advanced the understanding of nanoscale heat transfer and energy conversion. He has also explored ultrahigh strain in PZ–PT–BNT piezoelectric ceramics, absorption characteristics and solar thermal conversion of Fe₃O₄@Au core/shell nanoparticles, recent advances of solar thermal conversion with wide absorption spectrum based on plasmonic nanofluids, and absorption capacity of Au core nanorods coated with various shell materials, contributing to the design of high-efficiency energy systems. Additional research includes the effects of morphological evolution and aggregation of plasmonic core-shell nanostructures on solar thermal conversion, photothermal conversion and thermal management of magnetic plasmonic Fe₃O₄@Au nanofluids, and temperature stability of strain in PZ–PT–BNT ternary ceramics, as well as enhanced piezoelectric properties in Bi(Fe,Mn)O₃–BaTiO₃ ceramics and low-temperature sintering and phase modulation of MgTiO₃–CaTiO₃ microwave dielectric ceramics, reflecting his broad expertise in energy and materials science. Dr. Xing has also contributed to biomedical nanotechnology through theoretical and in vivo investigations of gold nanoparticles for laser surgery, demonstrating a multidisciplinary approach that bridges nanotechnology, energy, and medical applications. With over 30 peer-reviewed publications and extensive experience as a journal reviewer, his research continues to advance innovative solutions for energy and material challenges.

Profile: Scopus | Orcid

Featured Publications

  • Li, X., Xing, L., Zhang, Z., Ha, Y., Zhang, M., & Li, Z. (2025). Performance and mechanism of plasmonic-magnetic Fe₃O₄–Au nanocomposites for enhanced light absorption and solar-driven interfacial steam generation. Journal of Alloys and Compounds, 1042, 184099.

  • Li, X., Xing, L., Zhang, Z., Zhang, M., Ha, Y., & Li, Z. (2025). Thermal performance of composite phase change materials integrated in all-weather solar interfacial evaporation system for thermal storage and water treatment. Journal of Energy Storage.

  • Xing, L., Li, X., Wang, R., Ha, Y., Li, D., Chen, B., & Li, Z. (2024). Fe₃O₄/Au@SiO₂ nanocomposites with recyclable and wide spectral photo-thermal conversion for a direct absorption solar collector. Renewable Energy, 235, 121269.

  • Denghui, J., Luo, F., Yuanshui, L., Kao, P., Xing, L., & Li, Z. (2024). Ultrahigh strain in PZ–PT–BNT piezoelectric ceramic. Ceramics International, 50(2), 3803–3811.

  • Xing, L., Wang, R., Ha, Y., & Li, Z. (2023). Absorption characteristics and solar thermal conversion of Fe₃O₄@Au core/shell nanoparticles for a direct-absorption solar collector. Renewable Energy, 216, 119120.

Prof. Dr. Gael Plantard | Energy Nanomaterials Awards | Best Researcher Award

Prof. Dr. Gael Plantard | Energy Nanomaterials Awards | Best Researcher Award

Prof. Dr. Gael Plantard , Centre National de la Recherche Scientifique , France

Gaël Plantard is a University Professor in the Chemical and Process Engineering Department at the University of Perpignan-Via Domitia, where he has been a key member of the Processes, Materials, and Solar Energy Laboratory (UPR 8521) since 2006. His research focuses on developing innovative photocatalytic materials for solar applications, and he has published over 50 papers in this field. Plantard was awarded the Habilitation to Supervise Research in 2014 and was appointed University Professor in 2018. He has led numerous national and international projects and collaborations, contributing significantly to advancements in solar technologies. His work has been recognized with several awards, including the Occitanie Region “Chercheur Avenir” in 2013 and a nomination for the Frans Habraken Best Paper Award in 2022. In addition to his research, he has held various academic administrative roles, including serving as Head of the Chemical and Process Engineering Department and as an elected member of several university councils.

Professional Profile:

Scopus

Suitability for the Research for Best Researcher Award: Gael Plantard

Gael Plantard is highly suitable for the Research for Best Researcher Award due to his outstanding research contributions, innovative approach to solar energy and photochemical processes, significant mentorship role, and recognized excellence in his field. His extensive publication record, leadership in research initiatives, and notable awards collectively underscore his impact and commitment to advancing science and technology.

🎓Education:

Gaël Plantard holds a Habilitation to Supervise Research (HDR), awarded in 2014. He earned his Ph.D. in Chemical Engineering from the University of Perpignan-Via Domitia, with the exact year not specified. Additionally, he completed both his Master’s Degree and Bachelor’s Degree in Chemical Engineering at the same institution, although the specific years are not detailed.

🏢Work Experience:

Gaël Plantard has served as a University Professor in the Chemical and Process Engineering Department at the University of Perpignan-Via Domitia since 2018. He has been a researcher at the Processes, Materials, and Solar Energy Laboratory (UPR 8521) since 2006. From 2009 to 2015, he was the Head of the Chemical and Process Engineering Department. Additionally, Plantard has been an elected member of various university councils and committees at the University of Perpignan-Via Domitia from 2020 to 2024

Publication Top Notes:

  • “Implementation of an Advanced Photooxidation Process to Intensify Pharmaceuticals Removal by a Membrane Bioreactor”

    Citations: 4

  • “Continuous Degradation of Micropollutants in Real World Treated Wastewaters by Photooxidation in Dynamic Conditions”

    Citations: 4

  • “Photo-oxidation of Three Major Pharmaceuticals in Urban Wastewater Under Artificial and Solar Irradiations”

    Citations: 5