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.

Saida Mammadova | Surface Chemistry | Best Researcher Award

Dr. Saida Mammadova | Surface Chemistry | Best Researcher Award

Scientific researcher at Institute of Physics, Azerbaijan.

🔬 Saida Mammadova is a dedicated scientific researcher at the Institute of Physics, Ministry of Science and Education of Azerbaijan. With a Bachelor’s in Mathematics and a Master’s in Mathematical Analysis from Baku State University, she later earned a PhD in Physics, specializing in topological effects in superconductors. Her research focuses on quantum computing, topological superconductivity, and lithium-ion batteries. She has published 8 journal papers, contributed to 4 research projects, and is actively involved in material simulations using QuantumATK. Her work is paving the way for next-gen quantum technologies. ⚛️📚

https://chemicalscientists.com/rudivan-eldik-bioinorganic-chemistry-lifetime-achievement-award-2107/
Professional Profile
Suitability for the Researcher Award

Saida Mammadova is an exceptional researcher in the field of quantum physics and material science, with a strong academic background, extensive research contributions, and impactful innovations. Her expertise in topological superconductivity, quantum computing, and lithium-ion batteries has led to groundbreaking advancements in theoretical and applied physics. With over a decade of research experience, she has made significant strides in computational modeling, quantum materials, and spin-orbit interactions, making her a strong contender for the Best Researcher Award.

Education 🎓

  • 📘 Bachelor’s Degree in Mathematics – Baku State University
  • 📖 Master’s Degree in Mathematical Analysis – Baku State University
  • 🏅 PhD in Physics – Institute of Physics, Azerbaijan
    • Specialized in Topological Effects in Superconductors with Spin-Orbit Interaction

Experience 🔬

  • 👩‍🔬 Scientific Researcher – Institute of Physics, Ministry of Science and Education of Azerbaijan (10+ years)
  • ⚛️ Research Areas:
    • Quantum Computing 🖥️
    • Topological Superconductivity ❄️
    • Majorana Fermions 🔄
    • Density Functional Theory (DFT) 📊
    • Lithium-Ion Batteries 🔋
    • Adsorption & Diffusion in Intermetallic Crystals 🏗️
  • 🖥️ Expert in Atomistic Simulations using QuantumATK
  • 📑 Published 8 research papers in indexed journals
  • 📌 Completed 4 research projects on quantum materials and superconductivity
  • 🤝 Collaborated with Belarusian University on computational material simulations

 

Professional Development 🚀📖

Saida Mammadova has continuously expanded her expertise in quantum physics and material science through advanced research and collaborations. 🔬 She has contributed to four major research projects, focusing on quantum computing, topological superconductivity, and lithium-ion batteries. ⚛️🔋 Her work with Belarusian University enhanced her skills in computational material simulations using QuantumATK. 🖥️ She has published eight research papers in prestigious journals 📑 and actively explores new theories in superconductivity and spin-orbit interactions. 🔄 Dedicated to innovation, she strives to bridge the gap between theoretical models and real-world quantum technologies. 🌍✨

Research Focus 🔍🤖

Saida Mammadova specializes in quantum physics and material science, focusing on topological superconductivity, quantum computing, and Majorana fermions. ⚛️ She explores spin-orbit interactions and their effects on superconducting materials, contributing to next-generation quantum technologies. 🖥️ Her research extends to Density Functional Theory (DFT), lithium-ion batteries, and adsorption/diffusion in intermetallic crystals, aiming to enhance energy storage and electronic applications. 🔋📊 She also utilizes advanced simulation tools like QuantumATK to develop innovative material models, shaping the future of superconductors and nanotechnology. 🏗️🌍 Her work bridges theoretical insights with real-world applications in computational and experimental physics. 🚀

🏆 Awards & Honors of Baiyan Li

  • 🎖️ World Federation of Scientists National Scholarship – Recognized for outstanding research in topological superconductivity in quasi-1D structures.
  • 🏅 Women Research Award (Nominee) – Acknowledged for contributions to quantum computing and material science.
  • 📜 Published 8 research papers in prestigious SCI and Scopus-indexed journals.
  • 🔬 Completed 4 major research projects on quantum materials and superconductivity.
  • 🤝 Collaborated with Belarusian University on advanced computational material simulations.
 
Publication Top Notes:
  • 📌 Simulation of the adsorption and diffusion of lithium atoms on defective graphene for a Li-ion batteryMM Asadov, SO Mammadova, SS Huseynova, SN Mustafaeva, … | 🏅 Cited by: 6 | 📅 Year: 2023
  • 📌 Modeling of gold adsorption by the surface of defect grapheneMM Asadov, SO Mammadova, SS Guseinova, SN Mustafaeva, … | 🏅 Cited by: 6 | 📅 Year: 2022
  • 📌 Effect of the composition of a manganese-containing polymer catalyst on the kinetics of the oxidation reaction of n-heptane with molecular oxygenAF Isazade, UA Mammadova, MM Asadov, NA Zeynalov, DB Tagiev, … | 🏅 Cited by: 5 | 📅 Year: 2022
  • 📌 Modeling structural and energy characteristics of atoms in a GaS2D-crystal with point defectsMM Asadov, SO Mammadova, SS Guseinova, SN Mustafaeva, … | 🏅 Cited by: 4 | 📅 Year: 2022
  • 📌 Ab initio calculation of the band structure and properties of modifications of the Ti3Sb compound doped with lithiumMM Asadov, SO Mammadova, SS Guseinova, SN Mustafaeva, … | 🏅 Cited by: 4 | 📅 Year: 2022
  • 📌 Modeling of the Electronic Properties of M-Doped Supercells Li4Ti5O12–M (М = Zr, Nb) with a Monoclinic Structure for Lithium-Ion BatteriesMM Asadov, SO Mammadova, SN Mustafaeva, SS Huseynova, … | 🏅 Cited by: 2 | 📅 Year: 2024
  • 📌 Time-Reversal Invariant Topological Superconductivity in Quasi-One-Dimensional StructuresS Mammadova, E Nakhmedov, O Alekperov | 🏅 Cited by: 2 | 📅 Year: 2016
  • 📌 Adsorptive and colloidal-chemical characteristics of bentonite and its modified formsAI Yagubov, NM Muradova, SA Mammadova, UH Osmanova, … | 🏅 Cited by: 2 | 📅 Year: 2016

📌 Conclusion:

Saida Mammadova’s groundbreaking contributions, strong publication record, and dedication to advancing quantum materials research make her a highly deserving candidate for the Best Researcher Award. Her work bridges theoretical models with real-world applications, shaping the future of quantum computing, superconductivity, and nanotechnology. 🚀✨