Chenyuan Zhu | Environmental and Sustainable Materials | Research Excellence Award

Dr. Chenyuan Zhu | Environmental and Sustainable Materials | Research Excellence Award

Fudan University | China

Dr. Chenyuan Zhu is an accomplished researcher in chemistry and chemical engineering, recognized for impactful contributions to electrocatalysis, interfacial chemistry, and sustainable energy conversion. His research centers on the rational design of catalytic interfaces and active-site motifs to enable efficient electrochemical transformations, particularly carbon dioxide reduction and nitrate-to-ammonia conversion, which are critical for carbon neutrality and green nitrogen cycles. Dr. Zhu’s work systematically explores how bimetallic interfaces, crystallographic facets, defect engineering, and ionomer regulation influence reaction pathways, selectivity, and catalytic efficiency. By combining precise materials synthesis with advanced electrochemical characterization, his studies reveal structure–function relationships that govern multi-electron transfer reactions. Notably, his research on Au/Cu and Ag/Cu biphasic interfaces has demonstrated selective tandem conversion of CO₂ into value-added C₂+ alcohols, offering new strategies for carbon utilization. His investigations into Cu-based catalysts have provided fundamental insights into dynamic surface restructuring and product-specific active sites, significantly advancing the understanding of electrochemical CO₂ reduction mechanisms. In the area of electrochemical nitrogen conversion, Dr. Zhu has reported innovative approaches for nitrate-to-ammonia synthesis using tandem and biphasic catalytic systems, achieving enhanced activity and selectivity. These works contribute to sustainable ammonia production pathways that bypass energy-intensive Haber–Bosch processes. His broader research portfolio also includes contributions to electrochemical methanation, battery materials, and photocatalytic membranes for water treatment, reflecting a strong interdisciplinary foundation spanning catalysis, energy storage, and environmental remediation. Dr. Zhu’s scholarly output includes publications in leading journals such as Chem, ACS Catalysis, Journal of the American Chemical Society, Nano Letters, Journal of Materials Chemistry A, ChemSusChem, and Journal of Energy Chemistry. Several of these works are highly cited, featured as reviews or highlights, and published in top-tier journals, underscoring their scientific influence and originality. His research is characterized by methodological rigor, innovative interface engineering concepts, and clear relevance to global sustainability challenges. Through sustained contributions to fundamental catalysis science and applied electrochemical technologies, Dr. Zhu’s research advances the development of high-efficiency catalytic systems for clean energy and chemical production. His work continues to shape emerging strategies for carbon management, green ammonia synthesis, and next-generation electrochemical processes, positioning him as a significant contributor to modern catalysis and sustainable chemical engineering research.

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Featured Publications

Doudou Zhang | Materials Science | Best Researcher Award

Dr. Doudou Zhang | Materials Science | Best Researcher Award 

Macquarie University | Australia

Dr. Doudou Zhang is a distinguished Macquarie University Research Fellow (Vice-Chancellor Fellow) and lecturer in the School of Engineering, renowned for her pioneering contributions to functional materials and photoelectrochemical (PEC) energy systems. Her research focuses on the development of advanced materials and device architectures for solar-to-hydrogen conversion, CO₂ reduction, and sustainable ammonia synthesis, integrating materials design, device engineering, and artificial intelligence (AI)-driven approaches to accelerate innovation in renewable energy technologies. Dr. Zhang received her Ph.D. in Chemistry from Shaanxi Normal University, followed by a prestigious postdoctoral research fellowship at the Australian National University (ANU) from 2019 to 2024, where she specialized in photo(electro)catalysis for sustainable hydrogen production. At Macquarie University, she leads several cutting-edge research projects as both sole and co-chief investigator, including the ARENA project (KC012) on accelerating the commercialization of direct solar-to-hydrogen technology (A$2.25M; A$163K at MQ), an ARC Discovery Project (DP250104928) on zero-gap photoelectrochemical ammonia synthesis (A$580K), and the Macquarie University Research Fellowship project on the direct synthesis of earth-abundant bifunctional catalysts (A$848K). Her research portfolio demonstrates a remarkable ability to attract competitive national and industry funding, exceeding A$10 million in cumulative project value through collaborations with industry leaders such as Fortescue Future Industries (FFI). Her earlier work as a main investigator contributed to multiple high-impact projects, including ARENA and FFI-funded initiatives focused on developing low-cost perovskite/silicon semiconductors and macroelectrode electrolysis systems, each driving substantial advances in low-cost green hydrogen production. Beyond academic research, Dr. Zhang has actively engaged with industry, leading consultancy projects like the AEA Ignite initiative (A$489K) for developing durable roll-to-roll functional coatings for next-generation energy devices. Dr. Zhang has achieved an H-index of 21 and over 1,970 citations (Google Scholar, October 2025), reflecting the global influence of her research in energy materials. She has authored 38 peer-reviewed journal papers, 1 book chapter, and 12 granted patents (including one patent that attracted A$833K industrial funding). Her publications are consistently featured in top-tier journals such as Energy & Environmental Science, Advanced Energy Materials, Applied Physics Reviews, Chemical Engineering Journal, Materials Today Energy, Angewandte Chemie International Edition, and Progress in Materials Science. Notably, over 31% of her works rank within the top 10% citation percentiles, and 76% are among the top 25% most cited papers globally. Her contributions also extend to scholarly authorship and thought leadership, including an invited chapter titled “Advances in Perovskite-Based Photocatalysts: Materials Design, Mechanisms, and Applications” in Semiconductors and Semimetals (Elsevier, 2025). Dr. Zhang’s recent works demonstrate the integration of AI and machine learning in catalyst discovery, as seen in her publication “Prospects of AI in Advancing Green Hydrogen Production”.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Zhang, D., & Co-authors. (2025, September 25). Minimizing buried interface energy losses via urea phosphate derivatives enable high-efficiency carbon-based mesoscopic perovskite solar cells. Small. https://doi.org/10.1002/smll.202507384

Zhang, D., Pan, W., Lu, H., Wang, Z., Gupta, B., Oo, A. T., Wang, L., Reuter, K., Li, H., Jiang, Y., & Karuturi, S. (2025, September 1). Prospects of AI in advancing green hydrogen production: From materials to applications. Applied Physics Reviews, 12(3), 031335. https://doi.org/10.1063/5.0281416

Attar, F., Riaz, A., Zhang, D., Lu, H., Thomsen, L., & Karuturi, S. (2025, August 15). Advanced NiMoC electrocatalysts precisely synthesized at room temperature for efficient hydrogen evolution across pH ranges. Chemical Engineering Journal, 518, 164494. https://doi.org/10.1016/j.cej.2025.164494

Zhang, D., Pan, W. S., Sharma, A., Shen, H., Lem, O., Saraswathyvilasam, A., Yang, C., Weber, K., Wu, Y., Catchpole, K., Oo, A. T., & Karuturi, S. (2025, March). Over 14% unassisted water splitting driven by immersed perovskite/Si tandem photoanode with Ni-based catalysts. Materials Today Energy, 48, 101809. https://doi.org/10.1016/j.mtener.2025.101809

Wang, P., Oo, A. T., Chen, L., & Zhang, D. (2025). Recent advances of interfacial modification over tantalum nitride photoanodes for solar water oxidation: A mini review. Frontiers in Chemistry, 13, 1600959. https://doi.org/10.3389/fchem.2025.1600959

Zhang, D., Pan, W., Jiang, Y., & Co-authors. (2024, December 28). Defect management and crystallization regulation for high-efficiency carbon-based printable mesoscopic perovskite solar cells via a single organic small molecule. Journal of Materials Chemistry A. https://doi.org/10.1039/d4ta06877g

Ding, J., Zhang, D., Riaz, A., Gu, H., Soo, J. Z., Narangari, P. R., Jagadish, C., Tan, H. H., & Karuturi, S. (2024, November). Scalable amorphous NiFe(OH)x/Fe/graphene bifunctional electrocatalyst via solution-corrosion for water splitting. CCS Chemistry, 6, 2692–2703. https://doi.org/10.31635/ccschem.024.202404423

Zhang, D., & Co-authors. (2024, July 5). Solar-driven ammonia synthesis with Co–TiOx and Ag nanowires enhanced Cu₂ZnSnS₄ photocathodes. Applied Catalysis B: Environmental, 348, 123836. https://doi.org/10.1016/j.apcatb.2024.123836

Ning Zhang | Thermoplastic Materials | Best Researcher Award

Prof. Ning Zhang | Thermoplastic Materials | Best Researcher Award

Professor at Department of Orthodontics, School of Stomatology, Capital Medical University, Beijing, China.

Dr. Ning Zhang is a distinguished academic and researcher specializing in orthodontics at Capital Medical University, School of Stomatology in Beijing, PR China. He completed his PhD at Capital Medical University and pursued postdoctoral research at the University of Maryland School of Dentistry. Dr. Zhang currently serves as the Director of the Science and Technology Department at Capital Medical University. His research is prominently focused on the development of antibacterial, protein-repellent, and remineralization dental materials, as well as advancements in thermoplastic materials. With over 100 publications in esteemed journals, he has made significant contributions to the field of dental materials science.

Professional Profiles:

Education

Dr. Ning Zhang obtained his PhD at Capital Medical University, School of Dentistry, in 2011.

Professional Experience

He worked as a postdoctoral researcher at the University of Maryland School of Dentistry in 2013. Currently, he serves as a Professor in the Department of Orthodontics at Capital Medical University, School of Stomatology, Beijing, PR China. He also holds the position of Director of the Science and Technology Department at Capital Medical University, School of Stomatology.

Research Interests

Dr. Ning Zhang’s research interests include:

  • Antibacterial, protein-repellent, and remineralization dental materials
  • Thermoplastic materials

Publications

  • Biocompatible reduced graphene oxide stimulated BMSCs induce acceleration of bone remodeling and orthodontic tooth movement through promotion on osteoclastogenesis and angiogenesis.
    • Authors: Ning Zhang
    • Year: 2022
    • Journal: Bioactive materials
    • Citations: PMID: 35386350; PMC: PMC8958387; DOI: 10.1016/j.bioactmat.2022.01.021
  • Higher yield and enhanced therapeutic effects of exosomes derived from MSCs in hydrogel-assisted 3D culture system for bone regeneration.
    • Authors: Ning Zhang
    • Year: 2022
    • Journal: Materials science & engineering. C, Materials for biological applications
    • Citations: PMID: 35067433; DOI: 10.1016/j.msec.2022.112646
  • Human Periodontal Ligament Stem Cell and Umbilical Vein Endothelial Cell Co-Culture to Prevascularize Scaffolds for Angiogenic and Osteogenic Tissue Engineering.
    • Authors: Ning Zhang
    • Year: 2021
    • Journal: International journal of molecular sciences
    • Citations: PMID: 34830243; PMC: PMC8621970; DOI: 10.3390/ijms222212363
  • Novel nanostructured resin infiltrant containing calcium phosphate nanoparticles to prevent enamel white spot lesions.
    • Authors: Ning Zhang
    • Year: 2021
    • Journal: Journal of the mechanical behavior of biomedical materials
    • Citations: PMID: 34871957; DOI: 10.1016/j.jmbbm.2021.104990
  • Gelatin reduced Graphene Oxide Nanosheets as Kartogenin Nanocarrier Induces Rat ADSCs Chondrogenic Differentiation Combining with Autophagy Modification.
    • Authors: Ning Zhang
    • Year: 2021
    • Journal: Materials (Basel, Switzerland)
    • Citations: PMID: 33668133; PMC: PMC7956601; DOI: 10.3390/ma14051053
  • Human periodontal ligament stem cell seeding on calcium phosphate cement scaffold delivering metformin for bone tissue engineering.
    • Authors: Ning Zhang
    • Year: 2019
    • Journal: Journal of dentistry
    • Citations: PMID: 31678476; DOI: 10.1016/j.jdent.2019.103220
  • Novel Protein-Repellent and Antibacterial Resins and Cements to Inhibit Lesions and Protect Teeth.
    • Authors: Ning Zhang
    • Year: 2019
    • Journal: International Journal of Polymer Science
    • Citations: DOI: 10.1155/2019/5602904
  • Advanced smart biomaterials and constructs for hard tissue engineering and regeneration.
    • Authors: Ning Zhang
    • Year: 2018
    • Journal: Bone research
    • Citations: PMID: 30374416; PMC: PMC6196224; DOI: 10.1038/s41413-018-0032-9
  • Protein-repellent and antibacterial effects of a novel polymethyl methacrylate resin.
    • Authors: Ning Zhang
    • Year: 2018
    • Journal: Journal of dentistry
    • Citations: PMID: 30248381; DOI: 10.1016/j.jdent.2018.09.007
  • Effects of water-aging for 6 months on the durability of a novel antimicrobial and protein-repellent dental bonding agent.
    • Authors: Ning Zhang
    • Year: 2018
    • Journal: International journal of oral science
    • Citations: PMID: 29925870; PMC: PMC6010414; DOI: 10.1038/s41368-018-0019-9