Innovative Research Award

Favour Nelson
University of Calabar, Nigeria
Favour Nelson
Affiliation University of Calabar
Country Nigeria
Scopus ID 58725427200
Documents 11
Citations 70
h-index 4
Subject Area Chemistry
Event Top Teachers Awards
ORCID 0009-0003-0308-6006
Google Scholar B5No04wAAAAJ

Favour Nelson is a Nigerian computational chemist affiliated with the University of Calabar whose academic work focuses on Density Functional Theory (DFT), hydrogen storage materials, catalysis, perovskite systems, computational materials science, and advanced molecular simulations. His research integrates first-principles calculations with theoretical modelling to investigate energy materials, catalytic mechanisms, adsorption processes, and solid-state materials for sustainable scientific applications. His scholarly contributions demonstrate growing research productivity in computational chemistry and materials science.[1]

Abstract

Favour Nelson’s research emphasizes computational chemistry and theoretical materials science with particular attention to Density Functional Theory, hydrogen storage materials, catalysis, adsorption mechanisms, and electronic structure analysis. His investigations employ first-principles calculations, atomistic simulations, molecular dynamics, phonon analysis, and computational modelling to understand functional materials for sustainable energy and environmental applications. His work contributes to the design of advanced materials exhibiting improved structural stability, electronic properties, and catalytic performance.[2]

Keywords

  • Catalysis
  • Computational Chemistry
  • Density Functional Theory (DFT)
  • Hydrogen Storage Materials
  • Inorganic Chemistry of Transition Metals
  • Nanoscience
  • Perovskite Compounds
  • Perovskite Materials
  • Solid-State Materials

Introduction

His academic background includes a Bachelor of Science in Applied Chemistry from the University of Calabar with undergraduate research focused on Mg-substituted NbH₂ fluorite structures for hydrogen storage applications. Through research assistant appointments, he has acquired expertise in computational chemistry software, Python-based modelling, materials simulation, crystallography, adsorption studies, molecular dynamics, phonon calculations, and theoretical catalysis. His multidisciplinary experience supports ongoing investigations in sustainable energy materials and computational materials engineering.[2]

Research Profile

His research profile combines computational modelling, advanced chemistry, programming, scientific communication, laboratory techniques, and academic mentoring. He possesses experience with Density Functional Theory, electronic structure calculations, adsorption analysis, phonon simulations, geometry optimization, machine learning fundamentals, molecular dynamics, Monte Carlo simulations, crystallographic analysis, and Python-based automation workflows. He also maintains professional affiliations with the Royal Society of Chemistry, American Chemical Society, and Students’ Chemical Society of Nigeria.[1]

Research Contributions

  • Applied Density Functional Theory to hydrogen storage materials.
  • Developed computational workflows for catalytic and energy material investigations.
  • Performed adsorption and electronic structure analyses of functional materials.
  • Utilized phonon calculations and molecular simulations for stability prediction.
  • Contributed to computational studies involving environmental remediation materials and drug delivery systems.

Publications

Favour Nelson has published influential computational chemistry research on hydrogen storage materials, covalent organic frameworks, nanomaterials, and transition metal complexes using Density Functional Theory, advancing sustainable energy and materials science through internationally indexed, peer-reviewed publications.[2][3][4][5]

Research Impact

According to the supplied Scopus profile, the researcher has authored 11 indexed documents receiving approximately 70 citations with an h-index of 4. These metrics reflect growing scholarly recognition within computational chemistry, theoretical materials science, and hydrogen storage research while demonstrating continued publication activity and collaborative scientific engagement.[1]

Award Suitability

The research portfolio demonstrates sustained engagement in computational chemistry, scientific teaching support, theoretical materials modelling, scholarly publication, professional development, conference participation, and international scientific collaboration. These academic achievements align with the objectives of the Innovative Research Award under the Top Teachers Awards by recognizing promising contributions to chemistry education, computational research, and advanced materials science.[1]

Conclusion

Favour Nelson has established a developing research profile centered on computational chemistry and theoretical materials science. His expertise in Density Functional Theory, hydrogen storage, catalysis, electronic structure analysis, computational simulations, and scientific communication provides a solid foundation for continued contributions to sustainable energy materials and advanced computational research within the international scientific community.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Favour Nelson, Author ID 58725427200. Scopus. https://www.scopus.com/pages/authors/58725427200
  2. Nelson, F. A., et al. (2024). Chemical effect of alkaline-earth metals (Be, Mg, Ca) substitution of BFe2XH hydride perovskites for applications as hydrogen storage materials: A DFT perspective. International Journal of Hydrogen Energy. DOI: https://doi.org/10.1016/j.ijhydene.2024.07.063
  3. Inah, B. E., Azogor, N. F., Nelson, F. A., et al. (2025). Exploring the adsorption properties of PTFE-decorated and metal doped covalent organic frameworks for environmental cleanup: A computational outlook. Computational and Theoretical Chemistry. https://doi.org/10.1016/j.comptc.2025.115202
  4. Akor, F. O., Edo, G. D., Nelson, F. A., et al. (2024). Surface modification of graphene and fullerene with Sulfur (S), Selenium (Se), and Oxygen (O): DFT Simulation for enhanced zidovudine delivery in HIV treatment. BMC chemistry. https://doi.org/10.1186/s13065-024-01259-3
  5. Nelson, F. A., et al. (2025). Anchoring of boron halides BX (X: F, Cl, and Br) on transition metal (M: Cr, Mo, W) carbonyl complexes M(CO)5 (M: Cr, Mo, W): structure, bonding, and energy decomposition studies based on theoretical calculations. Structural Chemistry. https://doi.org/10.1007/s11224-024-02406-1
Favour Nelson | Chemistry | Innovative Research Award

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