Assist. Prof. Dr. Bouchra Asbani | Materials for Energy Applications | Research Excellence Award

Assist. Prof. Dr. Bouchra Asbani | Materials for Energy Applications | Research Excellence Award

Laboratoire de Physique de la Matière Condensée | France

Assist. Prof. Dr. Bouchra Asbani is a distinguished materials scientist specializing in materials for energy applications, with a strong focus on functional materials, nanomaterials, and condensed matter physics. She serves as an Associate Professor at the University of Picardie Jules Verne, where she is affiliated with the Laboratory of Condensed Matter Physics and actively contributes to advanced research and academic leadership. Her expertise spans two-dimensional materials such as MoS₂, photodetection and photodegradation phenomena, electrocaloric and ferroelectric materials, electrochemical energy storage systems, micro-supercapacitors, photocatalysis, electrocatalysis, and sustainable hydrogen production. Dr. Asbani’s research is highly interdisciplinary, bridging fundamental materials physics with applied energy technologies, and addressing key challenges in clean energy conversion and storage. She has played a significant role in the development of advanced nanostructured materials for solar energy utilization, green hydrogen generation, and high-performance energy storage devices. In addition to her research contributions, she is actively involved in the supervision of doctoral researchers, guiding projects on transition metal dichalcogenide heterostructures and advanced nanomaterials for renewable energy applications. Dr. Asbani is also a co-inventor of an international patent related to nanostructured substrates, reflecting the translational impact of her work. Her scholarly output includes numerous peer-reviewed publications in high-impact international journals, demonstrating consistent contributions to materials science and energy research. Beyond research, she has contributed to the scientific community through participation in international conference organization and academic service. Her innovative research profile, mentorship, and dedication to sustainable energy materials make her a highly deserving recipient of the Research Excellence Award in Materials for Energy Applications.

Citation Metrics (Scopus)

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Citations
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Documents
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h-index
17

Citations

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h-index

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Featured Publications

Dr. Yongku Kang | Materials for Energy Applications | Research Excellence Award

Dr. Yongku Kang | Materials for Energy Applications | Research Excellence Award

Korea Research Institute of Chemical Technology | South Korea

Dr. Yongku Kang is a highly accomplished researcher in materials science whose work has significantly advanced the development of next-generation materials for energy applications, bridging fundamental chemistry, nanomaterials engineering, and functional device design. His outstanding scholarly impact is reflected in an impressive 4,038 citations distributed across 1,753 citing documents, supported by 102 i10-index publications, a substantial research output of 52 documents, and a strong h-index of 36, demonstrating both depth and sustained influence in his field. Dr. Kang’s research focuses on the design, synthesis, and characterization of advanced functional materials for energy storage, environmental sustainability, catalysis, and optoelectronic applications. His contributions encompass high-performance composites, nanostructured electrode materials, metal–organic frameworks, semiconducting materials, and biomaterials engineered for enhanced efficiency, stability, and performance in energy-driven systems. Through experimental innovation, state-of-the-art materials characterization techniques, and interdisciplinary collaboration, he has developed novel material architectures that improve ionic transport, catalytic activity, photophysical behavior, thermal stability, and environmental resilience. His work spans a range of high-impact areas including photocatalysis, electrocatalysis, hydrogen generation, energy storage devices, environmental purification materials, and bio-derived functional materials. Dr. Kang’s extensive publication record demonstrates leadership in advancing nanocomposite processing, interface engineering, and structure–property relationships in materials designed for clean energy conversion and sustainable technologies. In addition to his contributions as a prolific researcher, he is an active participant in academic mentoring, collaborative research networks, and scientific leadership activities, helping to drive innovation within the materials science community. Through a combination of high citation influence, interdisciplinary expertise, and technological creativity, Dr. Yongku Kang stands out as a distinguished scientist whose work continues to shape the evolving landscape of materials for energy applications, making him a highly deserving candidate for the Research Excellence Award.

Profiles: Google Scholar | Scopus

Featured Publications

San, M., Lee, M. H., Suk, J., & Kang, Y. (2025). Nanoelectrochemistry in next generation lithium batteries. In Electrochemistry and Photo-Electrochemistry of Nanomaterials (pp. 211–250).

Lee, J., Kang, Y., Suh, D. H., & Lee, C. (2005). Ionic conductivity and electrochemical properties of cross-linked poly (siloxane-g-oligo (ethylene oxide)) gel-type polymer electrolyte. Electrochimica Acta, 50(2–3), 350–355.

Nguyen, T. M., Biressaw, G. M., Lee, M. H., Kim, D. Y., Bui, T. H., Suk, J., & Kang, Y. (2025). Hybrid aqueous electrolyte design for interfacial stabilization in high-energy-density and long-life LiNi0.8Mn0.1Co0.1O2–Li4Ti5O12 lithium-ion batteries. Journal of Energy Storage, 139, 118915.

guyen, T. M., Biressaw, G. M., Kim, D. W., Jo, H. W., Suk, J., & Kang, Y. (2025). Improved stability of solid polymer electrolyte using an additive for a 4 V lithium-ion battery operated at room temperature. Journal of Energy Storage, 126, 117098.

Biressaw, G. M., Nguyen, T. M., Moon, S., Kim, D. Y., Kim, D. W., Suk, J., & Kang, Y. (2025). Ferroelectric 3D nanoweb-incorporated in situ cross-linked composite solid electrolyte for high-performance lithium–metal polymer batteries. ACS Applied Materials & Interfaces, 17(40), 56133–56143.

Choi, Y., Lee, J., Kim, H. G., Jeong, E. D., Bae, J. S., Kang, Y., & Kim, J. P. (2024). Electrochemical characteristics of dense PVDF-PEGDME polymer electrolytes for solid-state lithium-ion batteries. Journal of Industrial and Engineering Chemistry, 135, 532–538.

Kang, J., Kim, D. W., Kang, I., & Kang, Y. (2025). An advanced Li–O₂ battery with ultrahigh power and energy density. Journal of The Electrochemical Society, 172(3), 030516.

Dr. Ran Xu | Materials for Energy Applications | Best Researcher Award

Dr. Ran Xu | Materials for Energy Applications | Best Researcher Award

Hunan Institute of Technology | China

Dr. Ran Xu is a talented young researcher and lecturer at the School of Safety and Management Engineering, Hunan Institute of Technology, China. She obtained her Ph.D. in Safety Science and Engineering from Chongqing University, following her master’s degree from Henan Polytechnic University and a bachelor’s degree in Safety Engineering from Hebei University of Science and Technology. Dr. Xu has established herself as an emerging scholar in materials science and environmental safety, focusing on the development and application of porous carbon materials for gas separation, adsorption, and energy utilization. Her innovative research on coal-based activated carbon and nitrogen-doped porous materials contributes to advancements in methane recovery, carbon capture, and sustainable energy technologies. She has published five impactful scientific papers in high-quality international journals such as Journal of Materials Science, Chemical Engineering & Processing, Nanomaterials, RSC Advances, and AIChE Journal. With an h-index of 4, five published documents, and 177 citations from 160 scientific sources, Dr. Xu demonstrates promising research potential and growing global recognition. Her interdisciplinary work combines materials chemistry, environmental engineering, and data-driven modeling, including deep learning applications in rock fracture analysis and gas adsorption kinetics. Beyond her research, she actively participates in academic collaborations, contributing to the development of sustainable energy solutions and advanced material design. Dr. Ran Xu’s scholarly excellence, innovative approach to energy materials, and dedication to advancing safety and sustainability in engineering make her an outstanding representative of the new generation of scientists driving innovation in environmental and material research.

Profile: Scopus

Featured Publications

Xu, R., Xian, X., Song, Z., & Gu, M. (2023). The impact of effective pore percentage on CH₄/N₂ separation in coal-based activated carbon. Journal of Materials Science, 58, 1–14.

Xu, R., Xian, X., Song, Z., & Gu, M. (2023). Air preoxidation and Fe-catalyzed cooperative effect for preparation of high-performance coal-based granular activated carbon: Enhancing low-concentration CH₄ recovery and utilization. Chemical Engineering & Processing: Process Intensification, 193, 109555.

Li, Y., Xu, R., Wang, X., Wang, B., Cao, J., Yang, J., & Wei, J. (2018). Waste wool-derived nitrogen-doped hierarchical porous carbon for selective CO₂ capture. RSC Advances, 8, 19818–19826.

Li, Y., Xu, R., Wang, B., Wei, J., Wang, L., Shen, M., & Yang, J. (2019). Enhanced N-doped porous carbon derived from KOH-activated waste wool: A promising material for selective adsorption of CO₂/CH₄ and CH₄/N₂. Nanomaterials, 9, 266–271.

Gu, M., Xian, X., Miao, B., Chen, X., Du, X., Liu, Z., & Xu, R. (2022). A new approach for modeling adsorption kinetics and transport of methane and carbon dioxide in shale. AIChE Journal, 68, e17578.

Song, Z., Zhang, Z., Huang, J., & Xu, R. (n.d.). Utilizing deep learning and AE waveform to identify rock fracture stages under 3-D stress paths. SSRN Electronic Journal.