Shuquan Huang | Chemical Engineering | Research Excellence Award

Assoc. Prof. Dr. Shuquan Huang | Chemical Engineering | Research Excellence Award

Kunming University of Science and Technology | China

Assoc. Prof. Dr. Shuquan Huang is an accomplished researcher in catalysis and sustainable chemical engineering, with a strong focus on electrocatalysis, photocatalysis, and energy‐related catalytic materials. His scholarly output comprises 55 research documents, which have received 3,235 citations across 2,883 citing publications, reflecting wide international recognition and impact, and he holds an h-index of 32. His research addresses the rational design of advanced catalytic systems, including MoS₂-based electrocatalysts, metal–oxide and zeolite‐supported catalysts, and engineered nanostructures for hydrogen production, biomass conversion, selective hydrogenation, and environmental remediation. His work is regularly published in high‐impact journals such as Chemical Engineering Journal, ACS Sustainable Chemistry & Engineering, ACS Catalysis, Green Chemistry, Applied Catalysis B, and Advanced Materials Interfaces. Collectively, his contributions advance efficient, selective, and sustainable catalytic processes for clean energy generation and green chemical transformations.

Research Metrics (Scopus)

3500
2800
2100
1400
0

Citations
3,235

Documents
55

h-index
32

Citations

Documents

h-index


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Featured Publications

Anding Xu | Energy | Best Researcher Award

Assist. Prof. Dr. Anding Xu | Energy | Best Researcher Award

South China University of Technology | China

Assist. Prof. Dr. Anding Xu is a distinguished researcher in the field of energy storage materials with a focus on advanced sodium-ion and potassium-ion battery technologies. Holding a PhD in Materials Science and Engineering from South China University of Technology (SCUT), he has conducted pioneering research on heteronanostructure interfaces, 2D and porous nanomaterials, novel nanoscale architecture design, and electrode materials surface engineering to enhance energy storage mechanisms. Prior to his PhD, he earned a Master’s degree in Chemical Engineering from SCUT and a Bachelor’s degree in Light Chemical Engineering from Xi’an Polytechnic University. Dr. Xu has served as a Postdoctoral Fellow and currently as an Assistant Research Fellow at the School of Emergent Soft Matter, SCUT, where he focuses on controllable synthesis, interface structure regulation, and the sodium storage mechanism of carbon-based antimony single atoms and clusters composites. With 24 publications, 588 citations, and an h-index of 15, his work has appeared in high-impact journals including Small, Advanced Functional Materials, Journal of Materials Chemistry A, and ACS Applied Materials & Interfaces, covering topics such as MOF-derived porous carbon, Sb atomic clusters, Bi@N-doped carbon sheets, and high-performance anode materials. His research contributions have significantly advanced the understanding of nanostructured electrode materials, demonstrating exceptional potential for next-generation, high-rate, long-life energy storage solutions.

Profile : Scopus

Featured Publications

  • "MOF-Derived Hierarchically Porous Carbon with Orthogonal Channels for Advanced Na-Se Batteries"

  • "Constructing High-content Sb Atomic Clusters and Robust Sb-O-C Bond in Sb/C Composites for Ultrahigh Rate and Long-Term Sodium Storage"

  • "2D Bismuth@N-Doped Carbon Sheets for Ultrahigh Rate and Stable Potassium Storage"

  • "Sb2O3@ Sb nanoparticles impregnated in N-doped carbon microcages for ultralong life and high-rate sodium ion batteries"

  • "Ultrahigh Rate Performance of Hollow Antimony Nanoparticles Impregnated in Open Carbon Boxes for Sodium-Ion Battery under Elevated Temperature"

  • "Alloyed BiSb Nanoparticles Confined in Tremella-Like Carbon Microspheres for Ultralong-Life Potassium Ion Batteries"

  • "CuSe2 Nanocubes Enabling Efficient Sodium Storage"

  • "Confining MoSe2 Nanosheets into N-Doped Hollow Porous Carbon Microspheres for Fast-Charged and Long-Life Potassium-Ion Storage"

  • "Enhanced pseudocapacitance contribution to outstanding Li-storage performance for a reduced graphene oxide-wrapped FeS composite anode"

  • "Sulfur/Nitrogen Co-Doped In-Plane Porous Carbon Nanosheets as Superior Anode of Potassium-Ion Batteries"

 

 

Yongkui Zhang | Environmental Science | Best Researcher Award

Mr. Yongkui Zhang | Environmental Science | Best Researcher Award

Sichuan University | China

Author Profile

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Early Academic Pursuits

Mr. Yongkui Zhang began his academic journey in mineral processing at the Kunming Institute of Technology, where he pursued both his undergraduate and master’s education. His early academic training gave him a strong foundation in the principles of mineral processing and chemical engineering. Driven by a passion for advancing the field, he later completed his doctoral studies in inorganic chemical engineering at Sichuan University. These formative years established his expertise in both fundamental science and applied engineering, shaping his career path as a leading scholar in resource utilization and environmental sustainability.

Professional Endeavors

Following his academic training, Mr. Zhang started his professional career as an engineer at the Chengdu Comprehensive Rock and Mineral Testing Center, where he gained valuable practical experience in mineral processing research. He later transitioned into academia, beginning as a lecturer at Sichuan University, where his teaching and research contributions steadily elevated him to associate professor and eventually full professor. Over the years, he has played a pivotal role in shaping chemical engineering education and research, training numerous students and advancing interdisciplinary collaborations.

Contributions and Research Focus

Mr. Zhang’s research has consistently focused on the intersection of resources and the environment, addressing mineral processing, biomineralization, microbial fermentation, and advanced functional materials. His pioneering work has constructed a cross-disciplinary integrated innovation system based on industrial ecology, material recycling, and phase transformation technologies. This system has provided effective solutions for the utilization of low-grade mineral resources in Sichuan, thereby influencing regional industrial development. He has also led research in microbial platforms for converting waste biomass into valuable products and achieved breakthroughs in biological mineral regulation and environmental catalyst development.

Accolades and Recognition

His outstanding contributions have been recognized with provincial and municipal science and technology awards, including the Sichuan Provincial Science and Technology Progress Award and the Mianyang City Science and Technology Progress Award. His extensive publication record, with over a hundred research papers and numerous high-impact contributions indexed in SCI and EI, reflects the depth and influence of his work. Additionally, he holds multiple national invention patents and has successfully secured and led numerous national, provincial, and enterprise-level research projects.

Impact and Influence

The impact of Mr. Zhang’s research lies in both its academic significance and practical applications. His studies have advanced the sustainable development of mineral resources and influenced industrial practices in resource recycling and environmental protection. By promoting green chemistry and innovative approaches to resource utilization, his work has provided pathways for cleaner production, ecological balance, and the industrial application of biomineralization. His influence extends beyond academia through his service in professional committees, contributing to national strategies in mineral and resource management.

Legacy and Future Contributions

Mr. Zhang’s legacy is rooted in his contributions to advancing sustainable mineral processing and environmental governance. His integration of industrial ecology principles into resource utilization has set new directions for green technologies and cross-disciplinary research. Looking forward, his future contributions are expected to focus on further innovation in biomineralization, waste-to-resource conversion, and environmental catalysis, addressing global challenges of resource scarcity and environmental degradation. His continued leadership in professional societies and academic committees will ensure his work guides future generations of researchers and policymakers.

Publications


Article: Mn(II) enhanced in-situ homogenous Fenton-like reaction for efficient degradation of amantadine: Experimental and density functional theory calculations
Authors: Jia Luo, Zhe Wang, Bowen Chen, Yilong Li, Panyu Li, Yongkui Zhang
Journal: Journal of Environmental Chemical Engineering
Year: 2025


Article: Highly efficient sterilization of biogenic FeS₂ nanoparticles: Mechanism and inhibition of antibiotic resistance
Authors: Siyu He, Jing Chen, Junqiao Zhao, Zhe Wang, Ruoyan Wu, Yongkui Zhang
Journal: Chemical Engineering Journal
Year: 2025


Article: Production of high-amylose starch with low digestibility in a green marine microalga Tetraselmis subcordiformis by delaying high-bicarbonate induction
Authors: Yuhan Shen, Haoyu Zhang, Bo Zhang, Chenglin Xie, Longren Liao, Xiuyuan Ran, Yongkui Zhang, Changhong Yao
Journal: Carbohydrate Polymers
Year: 2025


Article: Rheological and thermal property of KH570-modified nano-SiO₂ grafted xanthan gum and its application in drilling fluid system
Authors: Jingqi Shi, Long Chen, Ruihan Xie, Jiayin Zhang, Shuangcheng Pi, Jiaming Yang, Yunhai Zhao, Feng Xiong, Yongkui Zhang, Tonghui Xie
Journal: Carbohydrate Polymers
Year: 2025


Article: Synthesis of amino acid surfactants bioinspired from melanin using ethyl protocatechuate
Authors: Jiadong Chen, Weikang Tang, Mengqi Han, Qinfei Chen, Hong Zhou, Yongkui Zhang, Wenbin Liu
Journal: Journal of Surfactants and Detergents
Year: 2024


Conclusion

In conclusion, Mr. Yongkui Zhang exemplifies the qualities of a researcher and academic dedicated to advancing both science and society. His journey from mineral processing to interdisciplinary innovation reflects his commitment to solving complex problems in resource utilization and environmental sustainability. With a strong record of publications, patents, awards, and leadership, he stands as a highly respected figure in chemical engineering and resource science. His enduring contributions continue to drive innovation and inspire progress in sustainable development and industrial ecology.

Fang-Fang Shen | Chemistry | Best Researcher Award

Dr. Fang-Fang Shen | Chemistry | Best Researcher Award

Nanchang Hangkong University | China

Author Profile

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Orcid

Early Academic Pursuits

Dr. Fang-Fang Shen began her academic journey with a strong interest in chemistry and materials science, which eventually guided her towards advanced research in supramolecular chemistry and photofunctional materials. Her early education built the foundation for her career in scientific innovation, where she cultivated a deep understanding of chemical interactions, molecular assemblies, and functional nanomaterials. These formative years shaped her path toward research excellence in environmental and chemical engineering.

Professional Endeavors

Currently affiliated with the School of Environmental and Chemical Engineering at Nanchang Hangkong University, Dr. Shen has established herself as a dedicated academic and researcher. Her professional work focuses on developing molecular tools and supramolecular systems with applications in sensing, imaging, and biomedical solutions. By integrating teaching responsibilities with rigorous research, she continues to inspire young scholars while advancing experimental methodologies within her department.

Contributions and Research Focus

Dr. Shen’s research contributions are significant in the fields of supramolecular chemistry, luminescent materials, and biomedical imaging. She has worked extensively on supramolecular assemblies for targeted imaging and drug-related applications, exploring phenomena such as room-temperature phosphorescence and energy transfer mechanisms. Her studies on Cu²⁺ and Ag⁺ detection using fluorogenic and chromogenic assays have provided impactful tools for environmental monitoring. Furthermore, her contributions to diabetic wound healing through supramolecular cascade reactions exemplify the intersection of chemistry and medicine in her work. Collectively, her research bridges molecular design with real-world applications in health and environmental sciences.

Accolades and Recognition

Dr. Shen has authored publications in high-impact journals including Advanced Optical Materials, Small, Chemical Science, Chinese Chemical Letters, and Journal of Organic Chemistry. Her work has been recognized for its novelty in developing supramolecular systems that enable targeted imaging, energy transfer, and sensing applications. By contributing to internationally reputed platforms, she has built a scholarly reputation in the global chemistry community, establishing her as a rising researcher with impactful scientific output.

Impact and Influence

The influence of Dr. Shen’s work extends across multiple domains of chemistry, materials science, and biomedical applications. Her research in supramolecular assemblies has introduced innovative strategies for mitochondrial imaging, while her sensing platforms address pressing issues in environmental monitoring. By developing multifunctional molecular systems, she has contributed to advancing both the fundamental understanding of supramolecular chemistry and its technological translation. Her research continues to inspire collaborative efforts in photochemistry, nanotechnology, and medicinal chemistry.

Legacy and Future Contributions

Dr. Shen’s legacy lies in her pioneering approach to integrating supramolecular chemistry with applications in health and environmental sciences. As her career advances, she is poised to further expand her research on smart molecular assemblies, targeted imaging agents, and advanced sensing technologies. Her future contributions are expected to strengthen interdisciplinary connections between chemistry, materials science, and biomedical engineering, ensuring that her work continues to address critical scientific and societal challenges.

Publications


Article: Dual-readout assay for determination of Ag⁺ and Cu²⁺ based on in situ fluorogenic and chromogenic reaction between dopamine and naphthoresorcin
Authors: Xue-Qing Cheng, Zhi-Hao Dai, Han-Xiao Gao, Qing-Shan Pan, Xiang-Juan Kong, Fang-Fang Shen, Shuang Wu
Journal: Microchemical Journal
Year: 2024


Article: Highly sensitive and selective ratiometric fluorescent and visual detection of Cu²⁺ based on the hydroxytyrosol–naphthoresorcin–quantum dots sensing platform
Authors: Xue-Qing Cheng, Zhi-Hao Dai, Han-Xiao Gao, Qing-Shan Pan, Xiang-Juan Kong, Fang-Fang Shen, Shuang Wu
Journal: Microchemical Journal
Year: 2023


Article: Diabetic wound healing activated by supramolecular cascade reaction
Authors: Fang-Fang Shen, Yuguo Wang, Leyong Wang
Journal: Chinese Chemical Letters
Year: 2022


Article: Macrocyclic confined purely organic room-temperature phosphorescence three-photon targeted imaging
Authors: Fang-Fang Shen, Zhixue Liu, Hua-Jiang Yu, Haoran Wang, Xiufang Xu, Yu Liu
Journal: Advanced Optical Materials
Year: 2022


Article: A tunable full-color lanthanide noncovalent polymer based on cucurbituril-mediated supramolecular dimerization
Authors: Hua-Jiang Yu, Xiao-Lu Zhou, Xianyin Dai, Fang-Fang Shen, Qingyang Zhou, Ying-Ming Zhang, Xiufang Xu, Yu Liu
Journal: Chemical Science
Year: 2022


Conclusion

In summary, Dr. Fang-Fang Shen is an accomplished researcher whose academic journey demonstrates excellence in supramolecular chemistry, sensing platforms, and functional materials for biomedical and environmental applications. Through her innovative publications, institutional engagement, and contributions to cutting-edge chemical research, she has established herself as a promising scientist of international standing. In conclusion, her research reflects both fundamental scientific advancement and practical impact, marking her as a distinguished scholar whose work will continue to influence the future of chemistry and its applications.