Yingying Li | Carbon Capture | Research Excellence Award

Research Excellence Award

Yingying Li
Zhejiang A & F University Donghu Campus
Yingying Li
Affiliation Zhejiang A & F University Donghu Campus
Country China
Scopus ID 59646691500
Documents 47
Citations 904
h-index 19
Subject Area Carbon Capture
Event Cryogenicist Global Awards

The Research Excellence Award recognizes notable scholarly contributions in the interdisciplinary field of carbon capture and sustainable environmental technologies. Yingying Li, affiliated with Zhejiang A & F University Donghu Campus, has developed a research profile characterized by publications addressing carbon adsorption materials, biomass-derived composites, and advanced environmental remediation systems. The researcher’s academic record demonstrates measurable scholarly impact through peer-reviewed publications, citation performance, and continued participation in global scientific discourse related to climate mitigation technologies.[1]

Abstract

Yingying Li has contributed to the advancement of carbon capture research through investigations involving adsorption materials, biochar engineering, and environmentally sustainable nanostructured systems. The research portfolio reflects a multidisciplinary orientation integrating materials science, environmental chemistry, and applied carbon management strategies. Published studies demonstrate attention to adsorption efficiency, recyclability, and practical implementation within sustainable environmental frameworks. Citation indicators and publication visibility further illustrate academic engagement within the international scientific community.[2]

Keywords

Carbon capture, adsorption materials, biomass-derived composites, environmental remediation, sustainable materials science, Cryogenicist Global Awards.

Introduction

Carbon capture technologies continue to occupy a central role in climate mitigation research due to increasing global concerns regarding greenhouse gas emissions and environmental sustainability. Academic investigations into adsorption systems, carbon sequestration mechanisms, and biomass-derived functional materials have expanded significantly during the last decade. Within this context, Yingying Li has participated in research activities focused on improving material performance for environmental applications, particularly in relation to carbon dioxide adsorption and sustainable remediation systems.[3]

Research Profile

The Scopus author profile associated with Yingying Li records 47 indexed publications and 904 citations, reflecting sustained participation in peer-reviewed environmental and materials science research. The researcher maintains an h-index of 19, indicating measurable scholarly influence across multiple studies and collaborative investigations.[1]

Research Contributions

Yingying Li’s research contributions include the development of biomass-based adsorption materials for carbon dioxide capture and environmental remediation applications. The work also involves the investigation of nanostructured porous materials designed to enhance adsorption efficiency and cyclic stability in carbon capture systems. Additionally, the researcher has participated in interdisciplinary environmental studies integrating chemistry, materials science, and sustainable engineering methodologies while contributing to peer-reviewed scientific literature addressing low-cost and environmentally compatible carbon management technologies. [3]

Publications

Yingying Li include Dynamic vapor-catalysis coupling in COF/MXene aerogels for synergistic solar evaporation and photocatalytic CO₂ reduction, A carbon-negative aerogel with superior CO₂ capture, flame retardancy, and strength based on a cellulose/MOF three-dimensional network, and Mechanically robust and flame-resistant cellulose nanofiber aerogels for efficient smoke pollutant adsorption. These studies highlight contributions to carbon capture materials, advanced aerogel technologies, and environmental remediation applications.

Research Impact

The citation profile associated with Yingying Li demonstrates consistent academic visibility within environmental science and carbon capture research communities. The accumulation of more than 900 citations indicates that the published work has contributed to ongoing scholarly discussions related to adsorption materials, carbon mitigation technologies, and environmentally sustainable engineering approaches.[1]

Award Suitability

The research profile of Yingying Li demonstrates alignment with the objectives commonly associated with international academic recognition programs emphasizing sustainability, environmental innovation, and carbon management research. The documented publication record, citation performance, and specialization in carbon capture technologies provide evidence of active scholarly contribution within a globally significant research domain.[2]

Conclusion

Yingying Li has established a research profile centered on carbon capture technologies, adsorption materials, and environmentally sustainable material systems. The publication and citation record reflects continued scholarly engagement within environmental science and materials engineering disciplines. Through interdisciplinary research contributions addressing carbon management and remediation technologies, the researcher has contributed to ongoing scientific efforts associated with sustainability and climate mitigation objectives.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Yingying Li, Author ID 59646691500. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59646691500
  2. Cryogenicist Global Awards. (2026). International recognition framework for sustainability and research excellence awards.
    https://cryogenicist.com/
  3. Lu, Y., Li, Y., Zhang, G., Liang, J., Zhu, H., & Fan, D. (2026). Dynamic vapor-catalysis coupling in COF/MXene aerogels for synergistic solar evaporation and photocatalytic CO2 reduction. Applied Catalysis B: Environment and Energy, 382, 125904.
    https://doi.org/10.1016/j.apcatb.2025.125904
  4. Wang, H., Zhu, L., Xia, W., Kang, M., Zhou, Q., Shi, W., Xiang, X., Sun, Q., & Li, Y. (2025). A carbon-negative aerogel with superior CO₂ capture, flame retardancy, and strength based on a cellulose/MOF three-dimensional network. Chemical Engineering Journal. Advance online publication.
    https://doi.org/10.1016/j.cej.2025.164458

  5. Li, Y., Xia, W., Zhuang, C., Hu, H., Kang, M., Wang, H., Zhu, L., Wang, H., & Sun, Q. (2026). Mechanically robust and flame-resistant cellulose nanofiber aerogels for efficient smoke pollutant adsorption. Carbohydrate Polymers, 376, 124827. https://doi.org/10.1016/j.carbpol.2025.124827

Nursaya Makayeva | Carbon Capture and Storage | Best Researcher Award

Dr. Nursaya Makayeva | Carbon Capture and Storage | Best Researcher Award

Senior Researcher | Institute of Combustion Problems | Kazakhstan

Nursaya Makayeva is a dynamic educator and analytical chemist from Al-Farabi Kazakh National University, specializing in research and development, quality control, and advanced analytical methods. With several years of experience in academic and research settings, she has contributed significantly to the fields of catalysis, methane decomposition, and sustainable energy solutions. Her expertise bridges both teaching and applied research, making her a valuable contributor to the scientific community.

Professional Profile

ORCID

Education

Nursaya Makayeva pursued her higher education at Al-Farabi Kazakh National University, where she completed her bachelor’s and master’s degrees in chemistry. She continued her academic journey by enrolling in a doctoral program, deepening her expertise in catalysis and advanced chemical processes. Alongside her formal academic qualifications, she gained practical research experience through internships at the Center of Physico-Chemical Methods of Research and Analysis of Al-Farabi KazNU and at the Republican Center for Structural Research in Tbilisi, Georgia. These opportunities enriched her academic foundation by combining theoretical learning with hands-on laboratory practice.

Experience

Her professional career combines teaching, research, and practical application. As an educator, she designed engaging curricula and provided academic support that fostered student growth. In research, she served as a junior researcher at institutions such as the Institute of Combustion Problems and the Center of Physico-Chemical Methods of Research and Analysis, focusing on experimental design, catalytic systems, and advanced laboratory analysis. Skilled in techniques like chromatography, voltammetry, and TPR-H2, she applied these methods to produce reliable scientific outcomes. Her collaborations with senior researchers, contributions to R&D projects, and participation in international conferences further highlight her growing role in the global scientific community.

Research Focus

Nursaya’s primary research interests lie in catalysis, hydrogen production, and carbon utilization, with a particular emphasis on methane decomposition processes. Her studies explore the development and optimization of catalysts, including mono- and bimetallic systems, for efficient energy conversion. She has also investigated the effects of preparation methods and the incorporation of rare earth oxides, such as cerium, on catalyst performance. Her recent contributions extend to sustainable solutions in carbon dioxide utilization, where she has co-authored review studies on catalytic, photocatalytic, and electrocatalytic processes for CO₂ conversion. By addressing the intersection of renewable energy, environmental protection, and advanced materials, her research supports global efforts toward cleaner energy systems and reduced greenhouse gas emissions.

Publication Top Notes

Title: Advancements in catalytic, photocatalytic, and electrocatalytic CO₂ conversion processes: Current trends and future outlook
Year: 2024

Title: Effects of cerium oxide on the activity of Fe-Ni/Al₂O₃ catalyst in the decomposition of methane
Year: 2024

Title: Electrochemical synthesis of Fe-containing composite for decomposition of methane into COx-free hydrogen and nano-carbon
Year: 2022

Title: Effect of Preparation Method on the Activity of Fe₂O₃-NiO/γ-Al₂O₃ Catalyst in Decomposition of Methane
Year: 2022

Conclusion

Nursaya Makayeva exemplifies the qualities of an emerging leader in chemistry, combining strong academic foundations with impactful research and practical applications. Her dedication to advancing catalytic science, her ability to merge teaching with high-quality research, and her collaborative approach to scientific problem-solving highlight her as a deserving candidate for recognition. Through her contributions to methane decomposition, hydrogen production, and carbon dioxide utilization, she has positioned herself at the forefront of sustainable energy research. Her growing body of publications, active participation in international collaborations, and innovative patent demonstrate her potential to continue shaping the field of chemistry with lasting impact.