Mulatu Kassie Birhanu | Chemical Engineering | Innovative Research Award

Innovative Research Award


Mulatu Kassie Birhanu

University of Stuttgart, Germany

Mulatu Kassie Birhanu
Affiliation University of Stuttgart
Country Germany
Scopus ID 57204063748
Documents 10
Citations 461
h-index 6
Subject Area Chemical Engineering
Event International Forensic Scientist Awards
ORCID 0000-0001-5287-6862

Mulatu Kassie Birhanu is a researcher affiliated with the University of Stuttgart whose documented research output is situated within Chemical Engineering. The available publication record includes work addressing electrochemical carbon dioxide conversion, integrated carbon capture and electrolysis, and agricultural resource utilization. Scopus records supplied for this profile report 10 documents, 461 citations, and an h-index of 6.

Abstract

Mulatu Kassie Birhanu’s research profile reflects activity in Chemical Engineering with a focus represented by recent publications on electrochemical CO2 reduction, carbon capture and electrolysis, and integrated approaches to agricultural resource management. His reported Scopus record comprises 10 documents, 461 citations, and an h-index of 6. These indicators provide a quantitative view of the visibility of the documented research output.

Keywords

  • Chemical Engineering
  • Carbon Capture
  • Gas Diffusion Electrodes
  • Sustainable Resource Utilization

Introduction

The research record supplied for Birhanu indicates an interdisciplinary connection between chemical engineering, electrochemical technologies, carbon management, and resource-efficient applications. Recent publications further indicate engagement with both fundamental electrode-performance questions and broader implementation considerations. The documented work therefore provides a basis for examining research activity through publications and bibliometric indicators.

Research Profile

A notable theme is electrochemical conversion of CO2. The 2026 ChemElectroChem article examines the role of binders in SnO2-based gas diffusion electrodes for electrochemical CO2 reduction to formic acid.[2] Another publication considers integrated CO2 capture and electrolysis in the context of industrial implementation.[3]

Research Contributions

The listed studies demonstrate research spanning electrode materials and processing variables, integrated carbon-management systems, and agricultural applications. The gas-diffusion-electrode study addresses a specific performance factor in CO2 electroreduction, while the review-oriented work addresses integration of capture and electrolysis. A separate PLOS ONE publication examines combined organic and chemical fertilizer application in sugarcane cultivation.[4]

Publications

  • Role of Binders on the Performance of SnO2-Based Gas Diffusion Electrodes for Electrochemical CO2 Reduction to Formic Acid. ChemElectroChem, 2026.
  • Integrated application of meat waste-derived organic fertilizer and chemical fertilizer in sugarcane cultivation. PLOS ONE, 2026.
  • Integrated CO2 capture and electrolysis: advancing industrial implementation. Current Opinion in Chemical Engineering, 2026.

Research Impact

The supplied Scopus indicators record 461 citations across 10 documents and an h-index of 6.[1] These measures describe citation visibility within the indexed record and should be interpreted in relation to publication age, field-specific citation patterns, and database coverage.

Award Suitability

The documented publication themes provide a research basis relevant to an Innovative Research Award, particularly through work connecting electrochemical CO2 conversion with electrode engineering and integrated carbon-capture technologies. The publication record also demonstrates application-oriented research extending into sustainable agricultural resource use. These documented areas can be considered alongside the researcher’s broader record during formal award evaluation.

Conclusion

Mulatu Kassie Birhanu’s documented profile combines Chemical Engineering research with recent work on electrochemical CO2 conversion, carbon capture and electrolysis, and resource-oriented agricultural applications. The supplied bibliometric record and publications provide measurable evidence of research activity and citation visibility, while the listed studies illustrate several application contexts within sustainable engineering.

References

  1. Elsevier. (n.d.). Scopus author details: Mulatu Kassie Birhanu, Author ID 57204063748. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57204063748
  2. ChemElectroChem. (2026). Role of Binders on the Performance of SnO2-Based Gas Diffusion Electrodes for Electrochemical CO2 Reduction to Formic Acid.
    https://doi.org/10.1002/celc.70303
  3. Current Opinion in Chemical Engineering. (2026). Integrated CO2 capture and electrolysis: advancing industrial implementation.
    https://doi.org/10.1016/j.coche.2025.101222
  4. PLOS ONE. (2026). Integrated application of meat waste-derived organic fertilizer and chemical fertilizer in sugarcane cultivation.
    https://doi.org/10.1371/journal.pone.0352193
  5. ORCID. (n.d.). ORCID record: Mulatu Kassie Birhanu.
    https://orcid.org/0000-0001-5287-6862
  6. International Forensic Scientist Awards. (n.d.). Award information and official website.
    forensicscientist.org

Jinbo Feng | Environmental and Sustainable Materials | Best Researcher Award

Mr. Jinbo Feng | Environmental and Sustainable Materials | Best Researcher Award

Shenzhen University | China

Mr. Jinbo Feng is a researcher in architecture at Shenzhen University, China, whose work focuses on sustainable building design, environmental comfort, and material innovation. His research integrates architectural theory with environmental technology, emphasizing thermal comfort optimization, self-insulating concrete development, solid waste recycling, and bionic design for marine ecological restoration. He has co-authored peer-reviewed studies, including the SCI Q2 article “Climate-Responsive Design for Sustainable Housing: Thermal Comfort, Spatial Configuration, and Environmental Satisfaction in Subtropical Void Decks” published in Buildings, and presented at the 16th International Conference on Environment-Behavior Studies (CEB-ASC) on residents’ perception of settlement spaces. His ongoing projects involve the thermal comfort study of overhead spaces in subtropical residential buildings, finite element modeling of thermal and mechanical behavior in insulating blocks, and bionic polymer reef design under the Shenzhen–Hong Kong Joint Funding Programme. Recognized with the Shenzhen University Special Award Scholarship and other academic honors, Feng demonstrates a strong commitment to advancing low-carbon, resource-efficient architectural solutions. His work contributes to bridging the gap between design aesthetics, engineering functionality, and environmental sustainability, promoting innovative strategies for climate-responsive architecture in rapidly urbanizing subtropical regions.

Profile: ORCID

Featured Publications

  • Feng, J., & [Mentor’s Name]. (2024). Climate-responsive design for sustainable housing: Thermal comfort, spatial configuration, and environmental satisfaction in subtropical void decks. Buildings. (SCI Q2).

  • Feng, J., & [Mentor’s Name]. (2024). A study of the correlation between the form of public space in settlements and the evaluation of residents’ perceptions. In Proceedings of the 16th International Conference on Environment-Behavior Studies (CEB-ASC), Nanjing University, China.

Mohamed Noufal | Chemical Engineering | Best Researcher Award

Prof. Mohamed Noufal | Chemical Engineering | Best Researcher Award

Hampton University | United States

Prof. Mohamed Noufal, Ph.D., is a distinguished chemical engineer and academic leader, serving as Chair of the Department of Chemical Engineering and Director of the Quantum Materials Laboratory at Hampton University, Virginia, USA. He earned his Ph.D. in Environmental Sciences and Engineering from The University of Texas at El Paso (2022), an M.Sc. in Chemistry from Ain Shams University, Egypt (2016), and a B.Sc. in Chemistry from Mansoura University, Egypt (2012). With over eight years of experience in research, teaching, and program development, Prof. Mohamed Noufal has established an internationally recognized portfolio in advanced electrocatalysis, semiconductor interfaces, 2D materials, green hydrogen technologies, and AI-assisted materials discovery. His professional journey includes faculty associate roles at Purdue Fort Wayne’s First Molecule Center, visiting professorships at the University of Pennsylvania and University of Virginia, and leadership of interdisciplinary initiatives in fullerenes and van der Waals heterostructures. He has secured competitive funding from NSF, NASA, DOE, and other agencies, and has mentored numerous graduate and undergraduate researchers advancing in academic and professional roles. Prof. Mohamed Noufal’s recent publications include “Raman fingerprints of spin-phonon coupling and magnetic transition in an organic molecule intercalated Cr₂Ge₂Te₆”, “Unraveling the Cooperative Activity of Hydrophilicity, Conductivity, and Interfacial Active Sites in Alginate‐CNT‐CuO Self‐Standing Electrodes”, and “Cylindrical C96 Fullertubes: A Highly Active Metal‐Free O₂‐Reduction Electrocatalyst”, collectively cited 19 times across 7 Scopus-indexed documents with an h-index of 3. Recognized for his innovation in nanomaterials synthesis, biosensor development, and sustainable energy technologies, Prof. Mohamed Noufal has significantly advanced research, education, and interdisciplinary collaboration in chemical engineering.

Profile: Scopus | Staff Page

Featured Publications

Samanta, S., Iturriaga, H., Mai, T. T., Biacchi, A. J., Islam, R., Hight Walker, A. R., & Noufal, M. (2023). Raman fingerprints of spin-phonon coupling and magnetic transition in an organic molecule intercalated Cr₂Ge₂Te₆. arXiv preprint arXiv:2312.01270.

Noufal, M., et al. (2023). Unraveling the cooperative activity of hydrophilicity, conductivity, and interfacial active sites in alginate‐CNT‐CuO self‐standing electrodes with benchmark-close activity for alkaline water splitting. Advanced Sustainable Systems, 7(12), 2300283.

Bhunia, S., Peña-Duarte, A., Li, H., Li, H., Noufal, M., Saha, P., Addicoat, M. A., Sasaki, K., Strom, T. A., Yacamán, M. J., & Cabrera, C. R. (2023). [2,1,3]-Benzothiadiazole-spaced Co-porphyrin-based covalent organic frameworks for O₂ reduction. ACS Nano, 17(4), 3492–3505.

Noufal, M., et al. (2022). Cylindrical C₉₆ fullertubes: A highly active metal‐free O₂‐reduction electrocatalyst. Angewandte Chemie International Edition, 61(21), e202116727.

Puente Santiago, A. R., Noufal, M., Moreno-Vicente, A., Ahsan, M. A., Cerón, M. R., Yao, Y.-R., Sreenivasan, S. T., Rodriguez-Fortea, A., Poblet, J. M., & Echegoyen, L. (2021). A new class of molecular electrocatalysts for hydrogen evolution: Catalytic activity of M₃N@C₂ₙ (2n = 68, 78, and 80) fullerenes. Journal of the American Chemical Society, 143(16), 6037–6042.

Noufal, M., et al. (2021). Co–Cu bimetallic metal-organic framework catalyst outperforms the Pt/C benchmark for oxygen reduction. Journal of the American Chemical Society, 143(10), 4064–4073.

Noufal, M., et al. (2022). Metal-organic framework in fuel cell technology: Fundamentals and application. In Electrochemical applications of metal-organic frameworks (pp. 135–189). Elsevier.