Yuxi Xian | Chemical Engineering | Chemical Scientist Award

Chemical Scientist Award

Yuxi Xian
Affiliation Institute of Advanced Technology, University of Science and Technology of China
Country China
Scopus ID 57204719452
Documents 39
Citations 617
h-index 15
Subject Area Chemical Engineering and Technology
Event International Chemical Scientist Awards

Yuxi Xian is affiliated with the Institute of Advanced Technology, University of Science and Technology of China. The researcher has established a recognized academic profile in Chemical Engineering and Technology through peer-reviewed publications, interdisciplinary collaborations, and measurable citation performance. This profile summarizes scholarly activities and highlights suitability for recognition through the International Chemical Scientist Awards.[1]

Abstract

This academic profile presents an overview of Yuxi Xian’s scholarly achievements in Chemical Engineering and Technology. It highlights publication performance, citation metrics, research contributions, and professional impact while demonstrating qualifications relevant to recognition through the International Chemical Scientist Awards.[1][2]

Keywords

Chemical Engineering, Advanced Materials, Catalysis, Energy Technology, Research Excellence, Scientific Publications, Citation Analysis, Chemical Scientist Award.

Introduction

Yuxi Xian has contributed to chemical engineering research through studies emphasizing advanced materials, process innovation, and interdisciplinary collaboration. The researcher maintains an active publication record supported by measurable scholarly influence, reflecting continued participation in internationally recognized scientific research and knowledge dissemination.[1][2]

Research Profile

Affiliated with the Institute of Advanced Technology, University of Science and Technology of China, Yuxi Xian has authored thirty-nine indexed publications with more than six hundred citations. An h-index of fifteen demonstrates consistent research visibility and sustained academic engagement across chemical engineering disciplines.[1][3]

Research Contributions

Research contributions include investigations supporting chemical engineering technologies, advanced functional materials, and innovative processing approaches. Published studies have expanded scientific understanding while encouraging interdisciplinary collaboration and practical applications within modern industrial and academic environments through evidence-based experimental methodologies.[2][4]

Publications

The publication portfolio contains peer-reviewed journal articles indexed within international databases. These publications demonstrate methodological rigor, scientific originality, and continuing contributions to chemical engineering research while supporting citation growth, collaboration opportunities, and wider dissemination of research findings among global scientific communities.[1][4]

Research Impact

Citation metrics indicate that the research has received substantial scholarly attention within relevant scientific fields. Publications contribute to ongoing academic discussions, support future investigations, and provide valuable references for researchers developing innovative technologies and chemical engineering solutions.[1][2]

Award Suitability

Based on publication productivity, citation performance, research quality, and sustained academic contributions, Yuxi Xian demonstrates qualifications aligned with the evaluation principles of the International Chemical Scientist Awards, recognizing excellence, innovation, and measurable scientific influence within chemical engineering research.[1][3]

Conclusion

Yuxi Xian’s academic record reflects continuous engagement in high-quality chemical engineering research supported by internationally indexed publications and meaningful citation performance. These achievements illustrate an established scholarly profile appropriate for professional recognition through prestigious scientific award programs.[1][2]

External Links

References

  1. Elsevier. (n.d.). Scopus Author Details: Yuxi Xian, Author ID 57204719452.
    https://www.scopus.com/authid/detail.uri?authorId=57204719452
  2. Ma, W., Zhang, K., Xian, Y., Wang, P., Xu, H., & Hu, X. (2025). A non-noble metal photocatalyst CoP/g-C3N4 with high efficiency for hydrogen evolution under visible light. Molecular Crystals and Liquid Crystals, 769(2), 234–244.

    https://doi.org/10.1080/15421406.2024.2446809

  3. International Chemical Scientist Awards. (2026). Award Evaluation Guidelines.
    https://chemicalscientists.com
  4. Tan, C., Huang, H., Wang, F., Ke, N., Huang, A., Tang, W., Hao, L., Yin, L., Xu, X., & colleagues. (2024). Porous TiN-based ceramic electrode with N-modified Co-based nanorods/TiN heterointerfaces for efficient overall water splitting. Journal of Power Sources, 610, 234722.

    https://doi.org/10.1016/j.jpowsour.2024.234722

Saad Aljlil | Chemical Engineering | Excellence in Innovation Award

Excellence in Innovation Award

Saad Aljlil
King Abdulaziz City for Science and Technology, Saudi Arabia
Saad Aljlil
Affiliation King Abdulaziz City for Science and Technology
Country Saudi Arabia
Scopus ID 55795281900
Documents 55
Citations 1199
h-index 19
Subject Area Chemical Engineering
Event International Chemical Scientist Awards
ORCID 0000-0001-8115-8800

The Excellence in Innovation Award recognizes the scientific contributions of Saad Aljlil in the field of Chemical Engineering. His research activities have focused on membrane distillation, desalination technologies, thermal processes, and sustainable water treatment systems. Through peer-reviewed publications and scholarly impact, he has contributed to advancing knowledge in separation technologies and process optimization within chemical engineering disciplines.[1][2]

Abstract

Saad Aljlil has established a research portfolio centered on membrane distillation, desalination technologies, thermal engineering processes, and sustainable water treatment systems. His scientific publications explore temperature polarization phenomena, membrane performance optimization, concentration processes, and energy-efficient separation technologies. Through collaborations with international researchers, he has contributed to advancing knowledge in chemical engineering applications related to water purification and resource sustainability. His scholarly record, reflected through peer-reviewed publications, citations, and research visibility, demonstrates continued engagement with scientific challenges relevant to environmental sustainability, industrial process improvement, and innovative engineering solutions for water treatment and membrane-based technologies.[1][3]

Keywords

  • Chemical Engineering
  • Membrane Distillation
  • Desalination
  • Water Treatment
  • Thermal Processes
  • Sustainable Engineering
  • Separation Technology
  • Process Optimization

Introduction

Saad Aljlil is recognized for research addressing membrane-based separation processes and water treatment technologies. His studies contribute to understanding process efficiency, membrane performance, and sustainable engineering applications. The research aligns with contemporary challenges involving freshwater production, industrial separation systems, and environmentally responsible chemical engineering solutions.[2]

Research Profile

Affiliated with King Abdulaziz City for Science and Technology, Aljlil has developed an academic profile supported by indexed publications, substantial citation activity, and interdisciplinary collaborations. His work primarily spans membrane science, desalination engineering, thermal process analysis, and sustainable resource management within chemical engineering research.[1]

Research Contributions

Key contributions include investigations of temperature polarization effects, membrane distillation performance, concentration technologies, and process optimization methodologies. His studies provide valuable insights into improving operational efficiency and advancing engineering approaches for water purification and separation systems used in industrial and environmental applications.[3]

Publications

The publication portfolio includes peer-reviewed articles in reputable chemical engineering journals. Research outputs address membrane distillation mechanisms, desalination technologies, concentration processes, and thermal engineering applications. These publications demonstrate sustained scientific productivity and engagement with globally relevant engineering challenges.[2][3]

Research Impact

With more than one thousand citations and an established h-index, Aljlil’s research demonstrates measurable academic influence. His findings have supported ongoing developments in membrane technology and sustainable water treatment, contributing to scientific discussions and technological advancement across chemical engineering disciplines.[1]

Award Suitability

The Excellence in Innovation Award aligns with Aljlil’s demonstrated contributions to innovative engineering research. His publication record, citation performance, and focus on practical solutions for water treatment and separation technologies reflect the qualities associated with scientific innovation and research excellence.[1][2]

Conclusion

Saad Aljlil’s research achievements in membrane distillation and sustainable water treatment illustrate a consistent commitment to advancing chemical engineering knowledge. His scholarly contributions, documented through publications and citations, support recognition through the Excellence in Innovation Award within the International Chemical Scientist Awards program.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Saad Aljlil, Author ID 55795281900. Scopus.https://www.scopus.com/authid/detail.uri?authorId=55795281900
  2. Google Scholar. (n.d.). Scholar profile of Saad Aljlil and indexed scholarly publications.https://scholar.google.com/citations?user=jVmeqX8AAAAJ&hl=en&oi=sra
  3. Ali, A., Macedonio, F., Drioli, E., Aljlil, S., & colleagues. (2013). Experimental and theoretical evaluation of temperature polarization phenomenon in direct contact membrane distillation. Chemical Engineering Research and Design, 91(10), 1966-1977.https://www.sciencedirect.com/science/article/pii/S0263876213002736
  4. ORCID. (n.d.). ORCID record: Saad Aljlil.https://orcid.org/0000-0001-8115-8800

Inés María Santos Dueñas | Chemical Engineering | Editorial Board Member

Dr. Inés María Santos Dueñas | Chemical Engineering | Editorial Board Member

Professor | University of Cordoba | Spain

Dr. Ines Maria Santos Dueñas is an accomplished scholar in biochemical engineering, microbial biotechnology, and fermentation science, widely recognized for her influential contributions to acetic acid fermentation and industrial bioprocess optimization. With over 15 peer-reviewed publications and a scholarly record exceeding 993 citations, she has established a strong scientific footprint demonstrated by an h-index of 18 and an i10-index of 25. Her research portfolio spans high-impact works on gluconic acid production, microbial viability assessment, amino acid transformation during fermentation, dynamic modeling of acetification, and the development of advanced kinetic and identifiability approaches for biotechnological systems. Several of her most cited contributions such as studies on gluconic acid properties and biovalorization, rapid determination of viable and non-viable acetic acid bacteria, vinegar engineering, and the multi-part series on acetic acid fermentation modeling are regarded as foundational references within the fermentation and food biotechnology sectors. Dr. Santos Dueñas has also advanced the integration of omic technologies into fermentation research, contributing to metaproteomic and quantitative proteomic analyses that have improved understanding of microbial community dynamics in submerged acetification systems. Her collaborative work with experts across biochemical engineering, systems modeling, microbiology, and process control has resulted in impactful insights into fermentation rate estimation, nitrogen composition changes, and optimization strategies for producing high-quality fermented products. Through her extensive contributions, she has supported innovations in sustainable bioprocessing, valorization of agro-industrial by-products, and improved efficiency of microbial-driven production systems. Dr. Santos Dueñas’s research continues to influence industrial practice, guiding advancements in fermentation technology, process modeling, and microbial performance evaluation, while strengthening the scientific basis for modern biochemical and industrial biotechnology applications.

Profiles : Google Scholar

Featured Publications

  1.  Cañete-Rodríguez, A. M., Santos-Dueñas, I. M., Jimenez-Hornero, J. E., et al. (2016). Gluconic acid: Properties, production methods and applications—An excellent opportunity for agro-industrial by-   products and waste bio-valorization. Process Biochemistry, 51(12), 1891–1903. Cited by: 242

  2.  Baena-Ruano, S., Jiménez-Ot, C., Santos-Dueñas, I. M., Cantero-Moreno, D., et al. (2006). Rapid method for total, viable and non-viable acetic acid bacteria determination during acetification process.   Process Biochemistry, 41(5), 1160–1164. Cited by: 80

  3.  García-García, I., Santos-Dueñas, I. M., Jiménez-Ot, C., Jiménez-Hornero, J. E., et al. (2009). Vinegar engineering. In Vinegars of the World (pp. 97–120). Cited by: 62

  4.  Jiménez-Hornero, J. E., Santos-Dueñas, I. M., García-García, I. (2009). Optimization of biotechnological processes. The acetic acid fermentation. Part I: The proposed model. Biochemical Engineering   Journal, 45(1), 1–6. Cited by: 53

  5.  Maestre, O., Santos-Dueñas, I. M., Peinado, R., Jiménez-Ot, C., García-García, I., et al. (2008). Changes in amino acid composition during wine vinegar production in a fully automatic pilot acetator. Process   Biochemistry, 43(8), 803–807. Cited by: 51

Dr. Ines Maria Santos Dueñas advances microbial biotechnology and fermentation engineering, developing efficient and sustainable bioprocesses that elevate scientific understanding and industrial practice. Her work contributes to global improvements in food production, resource valorization, and environmentally responsible technologies.