Hongyuan Chuai | Photocatalysis | Best Researcher Award

Dr. Hongyuan Chuai | Photocatalysis | Best Researcher Award

Research Fellow from The HongKong Polytechnic University, China

Dr. Hongyuan Chuai is an accomplished researcher in the field of catalysis and electrochemical energy conversion. With a multidisciplinary background in organic, inorganic, and materials chemistry, he has made significant contributions to the development of innovative catalytic systems for carbon dioxide reduction and hydroformylation. His academic and research journey spans leading institutions in China and Europe, including Nankai University, Changchun University of Technology, CNRS in France, and currently, the Hong Kong Polytechnic University. Dr. Chuai’s research is distinguished by its focus on sustainable and green chemistry solutions, particularly the design of carbon-based materials and metal-supported catalysts. His work is published in top-tier journals such as ACS Catalysis and ACS Applied Materials & Interfaces, with multiple first and corresponding authorships. His studies on porous nanomaterials, single-atom catalysis, and electrocatalytic interfaces address critical global challenges in energy and environment. In addition to his research achievements, Dr. Chuai is actively involved in collaborative projects and mentorship roles, reflecting leadership potential and academic versatility. His combination of deep theoretical understanding and practical experimentation positions him as a prominent figure in modern catalysis. Dr. Chuai is a highly suitable candidate for accolades like the Best Researcher Award due to his innovation, productivity, and impact.

Professional Profile

Education

Dr. Hongyuan Chuai’s educational background reflects a strong foundation in chemistry and interdisciplinary research. He began his academic journey in 2011, enrolling in a Master’s program in organic chemistry at Changchun University of Technology. During this time, his research centered on the photocatalytic degradation of organic pollutants, laying the groundwork for his lifelong interest in catalytic systems and environmental remediation. He pursued his Ph.D. in inorganic chemistry at Nankai University, one of China’s top-tier institutions, from 2014 to 2016. His doctoral research involved the design and development of catalytic active sites on titanium dioxide (TiO₂) nanotubes for hydroformylation reactions. Further enriching his academic journey, Dr. Chuai participated in a prestigious joint Ph.D. program funded by the China Scholarship Council (CSC) at the Centre de Recherche Paul Pascal (CRPP), CNRS, in France from 2016 to 2018. This international exposure allowed him to explore the synthesis and characterization of spin-crossover (SCO) complexes. Dr. Chuai’s diverse academic experiences across organic and inorganic disciplines, both in China and abroad, have contributed to his comprehensive understanding of chemistry and catalysis, providing a solid platform for his continued research excellence.

Professional Experience

Dr. Hongyuan Chuai has accumulated over a decade of research experience across leading academic and research institutions. After completing his joint Ph.D. at Nankai University and CNRS, he was appointed as a Research Assistant at Nankai University from September 2019 to June 2020. His role during this period focused on catalysis and materials chemistry, preparing him for advanced postdoctoral work. From September 2020 to June 2024, he served as a Postdoctoral Fellow at Tianjin University, conducting pivotal research on carbon-based materials for electrochemical CO₂ reduction. He has concurrently held a position as an associate researcher at the same institution, demonstrating his growing academic leadership and project management skills. In 2024, Dr. Chuai advanced to a Research Fellow position at the Hong Kong Polytechnic University, further solidifying his reputation as an emerging expert in catalysis and sustainable materials. His professional trajectory showcases steady progress in research responsibility, scientific output, and collaborative engagement. Through roles that span both junior and senior research capacities, he has contributed significantly to the fields of inorganic chemistry, electrocatalysis, and environmental remediation. His work is consistently aligned with cutting-edge technology and global sustainability goals, underlining his value as an experienced and innovative researcher.

Research Interests

Dr. Hongyuan Chuai’s research interests are rooted in catalysis, inorganic chemistry, materials science, and sustainable energy. His primary focus lies in developing advanced catalytic materials for electrochemical carbon dioxide (CO₂) reduction, a reaction of global importance for mitigating climate change. He is particularly interested in carbon-based electrocatalysts, metal-supported systems, and porous nanostructures that can enhance catalytic selectivity and efficiency. His early academic pursuits in photocatalytic degradation of pollutants have evolved into broader interests in environmental catalysis and renewable energy conversion. In recent years, Dr. Chuai has expanded his work into single-atom catalysis, facet-dependent activity studies, and structure-property-function relationships of spinel oxides and hybrid nanomaterials. He also maintains an active interest in hydroformylation reactions using Rh- and Ru-based catalysts supported on engineered TiO₂ nanotubes. His projects often bridge theory with application, aiming to discover practical catalytic systems for energy-efficient and scalable chemical transformations. These research areas reflect a harmonious integration of environmental sustainability, fundamental chemistry, and advanced materials engineering. Dr. Chuai’s forward-looking vision and interdisciplinary mindset continue to shape the direction of his scientific exploration and establish him as a thought leader in energy-oriented chemical research.

Research Skills

Dr. Hongyuan Chuai possesses a robust and versatile skill set in experimental chemistry and advanced materials characterization. His expertise spans the synthesis of nanomaterials, electrocatalysts, and organometallic complexes, particularly those used in CO₂ reduction and hydroformylation processes. He has significant hands-on experience with techniques such as electrospinning, sol-gel synthesis, and wet chemical deposition for creating heterostructured and porous materials. In the laboratory, he demonstrates proficiency in catalyst design, surface modification, and doping strategies to fine-tune the catalytic performance of carbon-based and metal-supported materials. Dr. Chuai is highly skilled in structural and surface analysis using methods such as X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), and X-ray photoelectron spectroscopy (XPS). He also applies electrochemical techniques including linear sweep voltammetry (LSV), cyclic voltammetry (CV), and chronoamperometry for evaluating catalytic efficiency and reaction kinetics. Additionally, his research involves spectroscopic studies and in-situ monitoring of catalytic systems. His ability to integrate material design with mechanistic insights allows him to drive innovation in catalyst development. These technical competencies, combined with strong analytical and scientific writing skills, underscore Dr. Chuai’s capabilities as a leading researcher in energy conversion and catalysis.

Awards and Honors

While the curriculum vitae does not explicitly list formal awards, Dr. Hongyuan Chuai’s academic progression and publication record reflect a strong recognition within the scientific community. His selection for the China Scholarship Council (CSC) program for a joint Ph.D. at the Centre de Recherche Paul Pascal (CNRS) in France is a testament to his academic excellence and international competitiveness. Such scholarships are awarded to top-performing students and researchers, indicating his early promise as a scientific talent. Furthermore, his appointment as a Postdoctoral Fellow and later as an Associate Researcher at Tianjin University demonstrates institutional trust in his research capabilities. His most recent role as a Research Fellow at the Hong Kong Polytechnic University underscores a growing international reputation and leadership potential. In addition, Dr. Chuai has published in high-impact journals such as ACS Catalysis and ACS Applied Materials & Interfaces, which implies peer recognition and excellence in research quality. Although more formal awards, patents, or research grants as principal investigator could enhance his portfolio, his accomplishments already position him as a highly impactful and recognized researcher in his field. His career trajectory shows continued momentum toward greater recognition and future accolades.

Conclusion

Dr. Hongyuan Chuai is a remarkable and promising researcher whose contributions to catalysis and sustainable chemistry mark him as an emerging leader in the field. His interdisciplinary approach, grounded in both theoretical knowledge and experimental practice, enables him to tackle pressing environmental and energy-related challenges through innovative research. With a solid academic background, impressive international experience, and a growing publication record in prestigious journals, Dr. Chuai has demonstrated the qualities of a productive and visionary scientist. His work on carbon-based electrocatalysts and catalytic conversion processes is not only timely but also crucial to global sustainability goals. While further international collaborations, funding leadership, and industry-level research translation would elevate his academic standing even further, his current achievements are substantial. Dr. Chuai combines research rigor with originality and scientific maturity, making him highly deserving of recognition through awards such as the Best Researcher Award. His trajectory indicates a strong upward path, and with continued support and visibility, he is poised to make transformative contributions to the field of chemical and materials research.

Publications Top Notes

  1. Title: Enhancing Vinyl Acetate Hydroformylation with La‐Decorated Rh/TiO2 Nanotubes Catalysts
    Authors: Hongyuan Chuai, Baolin Zhu, Shoumin Zhang, Weping Huang
    Year: 2025

  2. Title: Discovery of Carbon Reduction Reaction
    Authors: Hongyuan Chuai, Weiping Huang, Sheng Zhang
    Year: 2025

  3. Title: Boosting Electrochemical CO2 Reduction to CO by Regulating the Porous Structure of Carbon Membrane
    Authors: Hongyuan Chuai, Haibei Yang, Sheng Zhang
    Year: 2024

  4. Title: Ceria-Mediated Dynamic Sn⁰/Sn^δ+ Redox Cycle for CO2 Electroreduction
    Authors: Hai Liu, Boyang Li, Zhihui Liu, Zhanpeng Liang, Hongyuan Chuai, Hui Wang, Shi Nee Lou, Yaqiong Su, Sheng Zhang, Xinbin Ma
    Year: 2023

  5. Title: Tailoring Microenvironment for Enhanced Electrochemical CO2 Reduction on Ultrathin Tin Oxide Derived Nanosheets
    Authors: Hai Liu, Yaqiong Su, Zhihui Liu, Hongyuan Chuai, Sheng Zhang, Xinbin Ma
    Year: 2023

  6. Title: Asymmetrical Electrohydrogenation of CO2 to Ethanol with Copper–Gold Heterojunctions
    Authors: Siyu Kuang, Yaqiong Su, Minglu Li, Hai Liu, Hongyuan Chuai, Xiaoyi Chen, Emiel J. M. Hensen, Thomas Meyer, Sheng Zhang, Xinbin Ma
    Year: 2023

  7. Title: Copper-Based Bimetallic Electrocatalysts for CO2 Reduction: From Mechanism Understandings to Product Regulations
    Authors: Haibei Yang, Hongyuan Chuai, Qingrui Meng, Meiyan Wang, Sheng Zhang, Xinbin Ma
    Year: 2022

  8. Title: Self-Supported Porous Carbon Nanofibers Decorated with Single Ni Atoms for Efficient CO2 Electroreduction
    Authors: Hui Wang, Hongyuan Chuai, Xiaoyi Chen, Jianlong Lin, Sheng Zhang, Xinbin Ma
    Year: 2022

  9. Title: Nanoporous Tin Oxides for Efficient Electrochemical CO2 Reduction to Formate
    Authors: Hai Liu, Baiyu Miao, Hongyuan Chuai, Xiaoyi Chen, Sheng Zhang, Xinbin Ma
    Year: 2022

  10. Title: Facet Dependent Oxygen Evolution Activity of Spinel Cobalt Oxides
    Authors: Lihua Zhang, Hongyuan Chuai, Hai Liu, Qun Fan, Siyu Kuang, Sheng Zhang, Xinbin Ma
    Year: 2021

Ji-Chao Wang | Photocatalysis | Best Researcher Award

Assist. Prof. Dr. Ji-Chao Wang | Photocatalysis | Best Researcher Award

Scientific and technological innovation talents in Henan Province at Ji-Chao Wang, Henan Institute of Science and Technology, China

Dr. Ji-Chao Wang is an accomplished Associate Professor and Master Supervisor at Xinxiang University, where he leads the Xinxiang Key Laboratory of Rational Design and Development of Optoelectronic Functional Materials. With a strong focus on advanced materials research, he has authored over 50 high-impact publications in journals such as Renewable Energy and ACS Applied Materials & Interfaces. Dr. Wang’s innovative contributions are highlighted by his portfolio of 18 patents and numerous prestigious awards, including the Basic Research Achievement Award from the China Chemical Engineering Society. His leadership in research projects funded by the National Natural Science Foundation and Henan Provincial programs underscores his dedication to addressing global challenges in energy, sustainability, and environmental science.

Professional Profile

Education

Dr. Ji-Chao Wang has cultivated a robust academic foundation in chemistry and materials science, earning his doctorate in a related field from a prestigious Chinese institution. Throughout his educational journey, he focused on the design and development of functional materials, equipping him with the expertise to explore renewable energy solutions and optoelectronic applications. His training emphasized the integration of fundamental science with applied technology, a hallmark of his subsequent research contributions.

Professional Experience

Dr. Ji-Chao Wang has built an exemplary career as an Associate Professor, combining teaching, research, and laboratory leadership. As the head of Xinxiang Key Laboratory, he spearheads cutting-edge research initiatives while mentoring graduate students. He has led several funded projects, including innovation talent programs and provincial research projects. His professional roles reflect his commitment to advancing material science and fostering the next generation of researchers.

Research Interests

Dr. Wang’s research is rooted in the design and synthesis of optoelectronic functional materials. His interests span renewable energy systems, catalysis, environmental remediation, and nanostructured materials for advanced applications. He focuses on developing green, sustainable technologies that address global energy challenges and contribute to environmental preservation. His work integrates computational modeling with experimental methods to achieve breakthroughs in material design.

Research Skills

Dr. Wang excels in a wide range of research methodologies, including advanced material synthesis, nanofabrication, catalysis design, and optoelectronic device development. He is adept at employing analytical tools such as spectroscopy, electron microscopy, and computational modeling to characterize material properties. His skills also include project management, research proposal writing, and fostering interdisciplinary collaboration, which are critical for his leadership in funded research projects.

Awards and Honors

Dr. Ji-Chao Wang’s contributions to science have been recognized with numerous accolades, including the Basic Research Achievement Award (China Chemical Engineering Society) and the Science and Technology Progress Award (Henan Province). His innovative work has earned him several patents, highlighting his ability to translate research into practical applications. These honors underscore his excellence in materials research and his impact on advancing sustainable technologies.

Conclusion

Ji-Chao Wang stands out as a strong candidate for the Excellence in Research Award due to his prolific contributions to high-impact research, innovative patents, and leadership in optoelectronic materials. While his achievements are impressive, focusing on increasing international collaborations and societal outreach could further enhance his global reputation. His track record demonstrates the potential for continued excellence and groundbreaking contributions, making him a highly suitable candidate for the award.

Publication Top Notes

  1. Rapid synthesis of novel S-scheme CaBi6O10/Bi2WO6 heterojunction film for efficient p-chlorophenol photocatalytic degradation
    Authors: Wang, J.-C., Ma, H., Shi, W., Hou, Y., Zhang, W.
    Year: 2025
  2. Variable valence I3−/I− ionic bridge assisting CuI nanoparticle/BiOI nanosheet S-scheme photocatalyst with hydrophobic surface for boosting CO2 conversion with 100% CO selectivity
    Authors: Wang, J.-C., Ma, H., Shi, W., Qiao, X., Hou, Y.
    Year: 2024
  3. Enhanced Electrochemical Performance of NiMn Layered Double Hydroxides/Graphene Oxide Composites Synthesized by One-Step Hydrothermal Method for Supercapacitors
    Authors: Chen, J., Jing, X., Wang, J.-C., Zhang, W.-Q., Zhang, Y.
    Year: 2024
  4. Visible-Light-Driven Reduction of CO2 to CO with Highly Active and Selective Earth-Abundant Metal Porphyrin-Conjugated Organic Polymers
    Authors: Hou, Y., Ma, H., Li, J., Lou, T., Cui, C.-X.
    Year: 2024
    Citations: 1
  5. Designed synthesized step-scheme heterojunction of Bi2WO6 nanosheet supported on CuBi2O4 nanorod with remarkable photo-assisted gas sensing for N-butyl alcohol
    Authors: Wang, J.-C., Ma, H., Shi, W., Zhang, W., Chen, J.
    Year: 2024
    Citations: 4
  6. Delicately Regulating the π-Spacer of D−π-A-Conjugated Polymers for Improved Visible-Light-Driven Hydrogen Evolution
    Authors: Li, R., Zhang, X., Wang, T., Zhang, C., Jiang, J.-X.
    Year: 2024
    Citations: 4
  7. Noble metal-free porphyrin covalent organic framework layer for CO2 photoreduction to CO
    Authors: Hou, Y., Ma, H., Zhu, D., Cui, C.-X., Wang, J.-C.
    Year: 2024 (In Press)
  8. Hydrophilic conjugated polymer additives in fullerene-heterojunction photocatalytic systems for efficient photocatalytic hydrogen evolution
    Authors: Tian, L., Guo, S., Feng, L., Wang, A., Cui, C.-X.
    Year: 2024
  9. One-pot hydrothermal preparation of Ni and I co-doped brookite-anatase TiO2 nanoparticles with remarkably enhanced photoreduction activity of CO2 to CH4
    Authors: Shi, W., Zhang, R., Wang, J.-C., Zhang, W., Gao, H.-L.
    Year: 2024
    Citations: 5
  10. Enhanced degradation of quinoline in three-dimensional electro-Fenton system through NiCo2S4/g-C3N4 particles
    Authors: Chen, J., Zhang, B., Wang, B., Wang, J., Zhang, W.
    Year: 2023
    Citations: 3