Nikolai Kocherginsky | Chemical Physics | Best Researcher Award

Dr. Nikolai Kocherginsky | Chemical Physics | Best Researcher Award

Founder at Next-ChemX, United States

Dr. Nikolai Kocherginsky 🎓 is the Founder and Chief Scientist at Next-ChemX 🔬, with a strong legacy in membrane technology and chemical innovation. Holding a Ph.D. from the Institute of Chemical Physics, Moscow 🇷🇺, and an M.S. in Chemistry from Moscow State University 🧪, he has taught and conducted research globally 🌍, including at UIUC 🇺🇸, Technion 🇮🇱, and NUS 🇸🇬. His groundbreaking work in lithium extraction and biomimetic membranes has gained international recognition 💧⚗️. Dr. Kocherginsky’s dedication to sustainable technologies and education 📘 has shaped both industrial advancements and academic development worldwide 🧠🌱.

Professional Profile:

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🔹 Education & Experience 

📚 Education:

  • 🎓 Ph.D. – Institute of Chemical Physics, Moscow, USSR

  • 📘 M.S. in Chemistry – Moscow State University

👨‍🏫 Academic & Research Experience:

  • 🧠 George A. Miller Visiting Scholar, UIUC (USA)

  • 🌏 Visiting Professor – Naresuan University, Thailand

  • 🕍 Lady Davis Fellow – Technion, Haifa, Israel

  • 🧪 Associate Professor – National University of Singapore

  • 🧬 Visiting Scholar – Dartmouth Medical School, USA

  • 🏆 Faculty Fellowship – U.S. Department of Energy (via AWU Inc.)

  • 📖 Taught General, Physical, Organic Chemistry, Biochemistry, and Membrane Science

  • 💻 Developed web-based learning tools and lab manuals

🔹 Professional Development 

Dr. Kocherginsky’s professional development 🌟 spans multiple continents, blending cutting-edge research with academic mentorship 🧑‍🏫. His work focuses on interdisciplinary approaches to chemical engineering and membrane technology ⚗️🌍. He has continuously evolved through visiting professorships 🧳 and global collaborations, notably with institutions like UIUC 🇺🇸 and Technion 🇮🇱. He has innovated in curriculum design 💡, particularly in web-based and lab-intensive chemical education 🧫🖥️. His professional path reflects a balance of industry-driven innovation and academic excellence 📈, pushing the frontiers in sustainable tech and separation sciences ♻️💧. His global mindset and adaptability make him a leader in next-gen chemistry applications 🔋🧠.

🔹 Research Focus 

Dr. Kocherginsky’s research centers around membrane science, green chemistry, and advanced separation technologies 🧪🔍. His projects emphasize nontraditional, biomimetic membranes for water purification 💧, lithium extraction 🔋, and radioactive metal separation ☢️. With a strong background in physical and organic chemistry ⚛️, he develops environmentally responsible methods for critical resource recovery 🌿. Supported by major agencies like ASTAR 🇸🇬, his work addresses global challenges in clean water, sustainable energy, and chemical waste reduction 🌎♻️. This multidisciplinary approach blends chemistry, environmental science, and nanotech innovation 🧬, contributing significantly to next-generation industrial applications and sustainability goals.

🔹 Awards & Honors 

🏅 Awards & Fellowships:

  • 🧠 George A. Miller Visiting Scholar – UIUC

  • 🕍 Lady Davis Fellowship – Technion, Israel

  • 🎓 Faculty Fellowship – U.S. Department of Energy via AWU, Inc.

  • 🌟 Recognized for securing nearly $1 million in research grants (e.g., ASTAR, Singapore)

  • 📜 Honored globally for contributions to membrane-based separation science and education

Publication Top Notes

1. Recent advances in supported liquid membrane technology

Authors: N.M. Kocherginsky, Q. Yang, L. Seelam
Journal: Separation and Purification Technology, 2007, Vol. 53(2), pp. 171–177
Citations: 542
Summary:
This review outlines the principles, benefits, and limitations of supported liquid membrane (SLM) technology. It explores its evolution, mechanisms of mass transfer, membrane stability, and scale-up potential for industrial applications such as metal ion separation and waste treatment.

2. Nitroxide spin labels: reactions in biology and chemistry

Authors: N. Kocherginsky, H.M. Swartz
Publisher: CRC Press, 1995
Citations: 382
Summary:
A comprehensive monograph on the chemistry and biological applications of nitroxide spin labels, especially in electron paramagnetic resonance (EPR). The book delves into their synthesis, stability, and use as probes in studying biomolecular structures and dynamics.

3. Demulsification of water-in-oil emulsions via filtration through a hydrophilic polymer membrane

Authors: N.M. Kocherginsky, C.L. Tan, W.F. Lu
Journal: Journal of Membrane Science, 2003, Vol. 220(1-2), pp. 117–128
Citations: 239
Summary:
This paper investigates the mechanism and efficiency of separating water-in-oil emulsions using hydrophilic polymer membranes, offering a novel physical method of demulsification without surfactants.

4. Antiplasmodial activity of ferrocenyl chalcones: investigations into the role of ferrocene

Authors: X. Wu, E.R.T. Tiekink, I. Kostetski, N. Kocherginsky, et al.
Journal: European Journal of Pharmaceutical Sciences, 2006, Vol. 27(2–3), pp. 175–187
Citations: 157
Summary:
This research explores the biological activity of ferrocene-containing chalcones against Plasmodium falciparum, linking ferrocene’s redox properties to enhanced antimalarial efficacy.

5. Copper corrosion in mildly alkaline water with the disinfectant monochloramine

Authors: X. Zhang, S.O. Pehkonen, N. Kocherginsky, G.A. Ellis
Journal: Corrosion Science, 2002, Vol. 44(11), pp. 2507–2528
Citations: 145
Summary:
A detailed study on the corrosion behavior of copper pipes in water treated with monochloramine, examining the roles of surface film formation and redox chemistry using electrochemical and spectroscopic techniques.

6. DSC and EPR investigations on effects of cholesterol component on molecular interactions between paclitaxel and phospholipid within lipid bilayer membrane

Authors: L. Zhao, S.S. Feng, N. Kocherginsky, I. Kostetski
Journal: International Journal of Pharmaceutics, 2007, Vol. 338(1–2), pp. 258–266
Citations: 112
Summary:
This work uses Differential Scanning Calorimetry (DSC) and EPR spectroscopy to study how cholesterol modulates drug-membrane interactions between paclitaxel and phospholipids, relevant to liposomal drug delivery systems.

7. The first fully characterized 1,3-polyazulene: High electrical conductivity resulting from cation radicals and polycations generated upon protonation

Authors: F. Wang, Y.H. Lai, N.M. Kocherginsky, Y.Y. Kosteski
Journal: Organic Letters, 2003, Vol. 5(7), pp. 995–998
Citations: 110
Summary:
Describes the synthesis and characterization of a 1,3-polyazulene polymer, highlighting its unique conductive properties due to proton-induced charge delocalization, a promising material for organic electronics.

8. Copper recovery and spent ammoniacal etchant regeneration based on hollow fiber supported liquid membrane technology: from bench-scale to pilot-scale tests

Authors: Q. Yang, N.M. Kocherginsky
Journal: Journal of Membrane Science, 2006, Vol. 286(1–2), pp. 301–309
Citations: 100
Summary:
Describes a scalable process using hollow fiber SLMs for recovering copper from spent etchants. The work presents both experimental optimization and industrial pilot-scale results.

9. Doping-dependent ion selectivity of polyaniline membranes

Authors: L. Wen, N.M. Kocherginsky
Journal: Synthetic Metals, 1999, Vol. 106(1), pp. 19–27
Citations: 75
Summary:
Investigates how dopant types and levels affect the ion transport properties of polyaniline membranes, suggesting applications in chemical sensing and selective separations.

10. Copper removal from ammoniacal wastewater through a hollow fiber supported liquid membrane system: modeling and experimental verification

Authors: Q. Yang, N.M. Kocherginsky
Journal: Journal of Membrane Science, 2007, Vol. 297(1–2), pp. 121–129
Citations: 72
Summary:
This paper presents mathematical modeling and experimental studies for optimizing the removal of copper ions from wastewater using SLM systems, reinforcing the method’s efficiency and predictability.

Conclusion

Dr. Nikolai Kocherginsky exemplifies the ideal profile for a Best Researcher Award—a visionary scholar with decades of impactful research, global academic service, and translational science that bridges laboratory innovation and industrial application. His career achievements, especially in membrane technology for sustainable separation processes, make him a deserving and high-impact candidate for recognition.

Bilal Ramzan | Physics | Best Researcher Award

Dr. Bilal Ramzan | Physics and Astronomy | Best Researcher Award

Assistant Professor at University of Management and Technology Lahore Pakistan, Pakistan.

Dr. Bilal Ramzan is a distinguished astrophysicist and academic affiliated with the University of Agriculture, Faisalabad, Pakistan. As an HEC-approved Ph.D. supervisor, he has made significant contributions to the fields of astrophysics and space sciences. His research primarily focuses on cosmic rays, astrophysical plasma, and interstellar medium dynamics. With a strong academic background and extensive publication record, Dr. Ramzan has established himself as a leading researcher in his domain. He has collaborated with esteemed international scholars and presented his findings at global conferences. His work is widely cited, reflecting its impact on the scientific community. Dr. Ramzan is also deeply involved in mentoring young researchers, guiding them in theoretical and computational astrophysics. His dedication to advancing space sciences in Pakistan and beyond highlights his commitment to academic excellence and scientific discovery.

Professional Profile:

Education

Dr. Bilal Ramzan has a robust academic background, with a Ph.D. in Astronomy and Astrophysics from the Graduate Institute of Astronomy, National Central University, Taiwan, where he graduated in 2021 with a GPA of 3.4/4.0. He holds a Master’s degree in Physics from COMSATS Institute of Information and Technology, Lahore, Pakistan, completed in 2014, and a Bachelor’s degree in Physics from the same institution, obtained in 2011. Additionally, he pursued a Bachelor’s in Education from the University of Education, Lahore, in 2012. His early education includes pre-engineering studies at Nishtar College for Boys, Lahore, and matriculation from Nishtar School for Boys. His strong educational foundation in physics and astrophysics has equipped him with the necessary knowledge and skills to contribute significantly to space sciences and interstellar research.

Professional Experience

Dr. Bilal Ramzan is currently affiliated with the University of Agriculture, Faisalabad, Pakistan, where he serves as a researcher and academic mentor. His role as an HEC-approved Ph.D. supervisor enables him to guide doctoral candidates in cutting-edge astrophysical research. He has an extensive research background in cosmic-ray physics, astrophysical fluid dynamics, and magnetohydrodynamics. Dr. Ramzan has actively participated in numerous international conferences, presenting his findings on cosmic-ray-driven outflows and galactic evolution. His experience extends to collaborative projects with leading space research institutes, where he has contributed to numerical simulations and theoretical modeling of interstellar phenomena. His expertise is sought after for peer reviews, and he serves as a referee for reputed scientific journals in astrophysics. His professional career is marked by a commitment to scientific innovation, interdisciplinary collaboration, and academic leadership.

Research Interest

Dr. Bilal Ramzan’s research interests lie in the study of cosmic rays, astrophysical plasmas, interstellar medium dynamics, and space weather phenomena. He explores the impact of cosmic rays on galactic evolution, particularly in the formation of outflows and winds. His work delves into the behavior of astrophysical fluids under extreme conditions, utilizing magnetohydrodynamic (MHD) models to simulate cosmic-ray interactions. Dr. Ramzan is also interested in the applications of deep learning and quantum computing in astrophysics, focusing on algorithmic approaches to understanding space-time structures such as wormholes. His research integrates computational astrophysics with observational data, aiming to provide deeper insights into cosmic-ray propagation and the thermodynamic behavior of interstellar clouds. Through his studies, he seeks to unravel the fundamental mechanisms governing high-energy astrophysical processes.

Research Skills

Dr. Bilal Ramzan possesses advanced research skills in numerical simulations, theoretical modeling, and data analysis in astrophysics. His expertise in magnetohydrodynamics (MHD) allows him to develop computational models for cosmic-ray interactions and plasma dynamics. He is proficient in coding and utilizing high-performance computing techniques to simulate astrophysical environments. Dr. Ramzan is skilled in analyzing observational data from space telescopes and ground-based observatories, correlating theoretical models with real-world astronomical phenomena. His familiarity with deep learning and quantum algorithms enables him to explore innovative approaches in astrophysical research. He also has strong technical writing skills, with a track record of publishing in high-impact scientific journals. His ability to synthesize complex theoretical concepts into tangible research findings showcases his analytical acumen and scientific rigor.

Awards and Honors

Dr. Bilal Ramzan has received multiple recognitions for his contributions to astrophysical research. He has been invited to present his work at prestigious international conferences, including the COSPAR Scientific Assemblies and ASROC Meetings. His publications in renowned journals such as Astrophysical Journal, Astronomy & Astrophysics, and Scientific Reports reflect the high quality and impact of his research. His contributions to understanding cosmic-ray-driven outflows have been acknowledged by the scientific community, leading to collaborative opportunities with leading researchers. As an HEC-approved Ph.D. supervisor, he has also been recognized for his role in mentoring young scientists and advancing astrophysical research in Pakistan. His work continues to shape the field, earning him accolades for scientific excellence and academic leadership.

Publication Top Notes

  1. Galactic outflows in different geometries
    • Authors: Majeed, U., Ramzan, B.
    • Year: 2025
  2. A fluid approach to cosmic-ray modified shocks
    • Authors: Ramzan, B., Qazi, S.N.A., Salarzai, I., Rasheed, A., Jamil, M.
    • Year: 2024
    • Citations: 1
  3. The formation of invariant optical soliton structures…
    • Authors: Faridi, W.A., Iqbal, M., Ramzan, B., Akinyemi, L., Mostafa, A.M.
    • Year: 2024
    • Citations: 18
  4. Magnetoacoustics and magnetic quantization of Fermi states in relativistic plasmas
    • Authors: Iqbal, A., Rasheed, A., Fatima, A., Ramzan, B., Jamil, M.
    • Year: 2024
  5. Deep learning and quantum algorithms approach to investigating the feasibility of wormholes: A review
    • Authors: Rahmaniar, W., Ramzan, B., Ma’arif, A.
    • Year: 2024
    • Citations: 1
  6. Determination of the optical properties of tungsten trioxide thin film…
    • Authors: Adnan, M., Jamil, M.I., Ramzan, B., Ahmad, A., Ghani, M.U.
    • Year: 2024
  7. Propagation of dust lower hybrid wave in dusty magneto dense plasma…
    • Authors: Yaseen, A., Mir, Z., Ramzan, B.
    • Year: 2024
  8. Continuous solutions of cosmic-rays and waves in astrophysical environments
    • Authors: Irshad, K., Ramzan, B., Qazi, S.N.A., Rasheed, A., Jamil, M.
    • Year: 2023
    • Citations: 1
  9. Transonic plasma winds with cosmic-rays and waves
    • Authors: Ramzan, B., Mir, Z., Rasheed, A., Jamil, M.
    • Year: 2023
    • Citations: 2
  10. Kelvin-Helmholtz instability in magnetically quantized dense plasmas
  • Authors: Rasheed, A., Nazir, A., Fatima, A., Kiran, Z., Jamil, M.
  • Year: 2023

Conclusion

Dr. Bilal Ramzan’s remarkable contributions to astrophysics, his extensive publication record, and his commitment to academic mentorship make him a strong contender for the Best Researcher Award. His expertise in cosmic rays, space plasmas, and astrophysical fluid dynamics is evident in his high-impact research and international collaborations. His ability to integrate computational techniques with observational astrophysics highlights his innovative approach to scientific inquiry. While his achievements are significant, continued interdisciplinary collaborations and the pursuit of larger research grants could further enhance his influence in the field. Overall, Dr. Ramzan stands out as a leading researcher whose work is shaping the future of space science.