Chen-Ning Li | Chemistry | Best Researcher Award

Dr. Chen-Ning Li | Chemistry | Best Researcher Award

Dr. Chen-Ning Li | Chemistry | Liaoning University | China

Dr. Chen-Ning Li is an accomplished researcher in the field of chemical engineering, specializing in the design and synthesis of advanced porous materials, particularly metal-organic frameworks (MOFs). His scientific work is primarily focused on addressing environmental challenges through the development of novel materials for gas separation and carbon capture applications. Dr. Li has demonstrated a consistent track record of publishing in reputed journals and engaging in high-level collaborations with international researchers. With deep expertise in molecular-level design strategies and catalytic frameworks, he has positioned himself as a leading contributor to the advancement of sustainable separation technologies and functional materials science. His research is recognized for its innovation, practical relevance, and methodological rigor.

Academic Profile:

ORCID

Scopus

Education:

Dr. Chen-Ning Li completed his doctoral studies in Chemical Engineering, where his focus was on porous materials and adsorption mechanisms in gas separation systems. Throughout his academic journey, he has cultivated a multidisciplinary knowledge base that combines material chemistry, catalysis, and engineering applications. His education has provided him with strong theoretical foundations and advanced experimental training, equipping him with the skills to tackle real-world problems in energy efficiency and environmental protection. His postgraduate work was conducted under prominent researchers in the field, further enhancing his capacity to lead in complex, research-intensive environments.

Experience:

Dr. Chen-Ning Li has accumulated significant research experience across academic and applied settings, contributing to both fundamental scientific advancements and industry-relevant outcomes. He has participated in multiple high-impact research projects, collaborating with global teams on challenges related to gas purification and carbon dioxide utilization. His experience spans the synthesis of functionalized MOFs, process optimization for gas separation, and structural engineering of materials at the nanoscale. In addition to laboratory work, Dr. Li has been actively involved in mentoring students, coordinating research efforts, and contributing to peer-review activities for various scientific journals. His academic responsibilities have also included guest lecturing, organizing research seminars, and assisting in the supervision of postgraduate theses.

Research Interest:

Dr. Chen-Ning Li’s research interests are centered on gas separation technologies using MOFs, carbon capture, and catalytic CO₂ conversion. He is particularly interested in the molecular engineering of framework materials to improve their selectivity and capacity for gas adsorption. His work explores the role of pore structure, surface chemistry, and defect modulation in enhancing material performance. Moreover, he is exploring strategies for tuning the microenvironment within MOFs to promote highly efficient separation of industrial gas mixtures. This line of research is integral to energy sustainability, and his work has applications in cleaner production processes, petrochemical refinement, and climate change mitigation.

Awards:

Dr. Chen-Ning Li has received recognition for his impactful contributions to scientific research, particularly in the field of material science and chemical engineering. He has been nominated for several institutional and international awards highlighting his excellence in research and innovation. His work has been acknowledged by peers and collaborators for its originality and relevance to solving global environmental challenges. His achievements reflect a dedication to high-impact research that supports the advancement of science and sustainable development.

Selected Publications:

  • Tartaric acid-functionalized MOF-808 with tailored ultramicroporous for efficient separation of C₂H₂ from C₂H₂/C₂H₄/CO₂ mixture, published in Chemical Engineering Journal, 2025 (Citations: 21)

  • Tuning the Pore Microenvironment of Metal–Organic Frameworks for Boosting CO₂ Fixation, published in ChemSusChem, 2025 (Citations: 17)

  • Understanding pore features of pillar-layered MOFs on one-step C₂H₄ purification from C₂H₆/C₂H₄ mixtures, published in Separation and Purification Technology, 2025 (Citations: 14)

  • Facet-dependent reactive oxygen species generation regulates photocatalytic oxidation of benzylamines, published in Journal of Catalysis, 2025 (Citations: 10)

Conclusion:

Dr. Chen-Ning Li is a highly dedicated and skilled researcher whose work continues to make significant contributions to material science, environmental engineering, and sustainable technology development. His innovative approach to the design of functional MOFs for gas separation and carbon capture addresses some of the most pressing environmental challenges of today. With a proven publication record, interdisciplinary collaborations, and growing recognition in the scientific community, Dr. Li demonstrates strong potential for future leadership in research and academic excellence. His nomination for this award is a testament to his commitment to advancing science for societal benefit.

 

 

Dr. Bo Zhang – atom catalysis – Best Scholar Award

Dr. Bo Zhang - atom catalysis - Best Scholar Award

Dalian Institute of Chemical Physics, Chinese Academy of Sciences - China

Professional Profiles

Early Academic Pursuits

Bo Zhang's academic journey began with a Bachelor's degree in Applied Chemistry from Shenyang Normal University, China, in 2007. He continued his studies with a Master's degree in Analytical Catalysis from Liaoning University, China, and pursued a Ph.D. in Molecular Catalysis from the Technical University of Munich, completing it in 2013. Zhang's early academic pursuits laid the foundation for his future research in catalysis and biomass conversion.

Professional Endeavors

Following his doctoral studies, Zhang joined the Dalian Institute of Chemical Physics (DICP), Chinese Academy of Sciences, where he progressed from a Postdoctoral Researcher to Assistant Professor and later to Associate Professor. Throughout his career at DICP, Zhang has demonstrated his expertise in heterogeneous catalysis and biomass conversion, contributing significantly to the field through his research endeavors.

Atom catalysis involves utilizing individual atoms or clusters as catalysts to drive chemical reactions with high precision and efficiency. By harnessing the unique properties of specific atoms, atom catalysis enables the development of highly selective and sustainable catalytic processes. This approach offers significant advantages in terms of reaction control, atom economy, and resource utilization, leading to the synthesis of valuable chemicals and fuels with minimal waste generation

Contributions and Research Focus On atom catalysis 

Bo Zhang's research primarily focuses on the catalytic conversion of biomass, depolymerization of lignin, and heterogeneous catalysis. His work aims to develop efficient and sustainable catalytic processes for the conversion of biomass into valuable chemicals and fuels, addressing the pressing need for renewable and environmentally friendly energy sources. Zhang's innovative approaches have led to advancements in catalyst design and biomass valorization techniques.

Atom catalysis plays a crucial role in various fields, including organic synthesis, environmental remediation, and energy conversion, offering promising avenues for advancing green and sustainable chemistry practices.

Accolades and Recognition

Zhang's contributions to catalysis and biomass conversion have been recognized through prestigious awards such as the Dalian Young Talents and Dalian Techstar awards in China in 2019. Additionally, his research publications have garnered significant attention, with a total of 40 scientific publications and 1531 citations as of January 2024. Zhang's impact in the field is further underscored by his h-index of 19, as listed by the Web of Science.

Impact and Influence

Bo Zhang's research has had a profound impact on the field of catalysis and biomass conversion, contributing to the development of sustainable energy solutions and environmentally friendly processes. His work has not only advanced scientific knowledge but has also provided practical solutions to global challenges related to energy and environmental sustainability. Zhang's influence extends beyond academia, as his research findings have the potential to drive innovation and shape future technologies.

Legacy and Future Contributions On atom catalysis

As Bo Zhang continues his academic and research endeavors, his legacy lies in his commitment to advancing catalysis and biomass conversion technologies. Through his innovative research approaches and collaborative efforts, Zhang aims to further enhance the efficiency and sustainability of biomass conversion processes, ultimately contributing to the transition towards a more sustainable and eco-friendly energy landscape. His future contributions are poised to inspire further advancements in the field and pave the way for a greener future.

Notable Publications