Subramanian K.R.V | Energy Materials | Best Researcher Award

Best Researcher Award

Subramanian K.R.V
Ramaiah Institute of Technology, India

Subramanian K.R.V
Affiliation Ramaiah Institute of Technology
Country India
Google Scholar ID l5p4bQkAAAAJ
Citations 3,033
h-index 31
i10-index 54
Subject Area Energy Materials
Event Global Mechanics Awards

Subramanian K.R.V is a researcher and academic affiliated with Ramaiah Institute of Technology, Bengaluru, India, whose documented research activities include nanoscience, advanced materials, electrochemical energy-storage materials, graphene-based systems, nanocomposites, and related engineering applications. His research record includes publications addressing energy-storage electrodes, supercapacitors, graphene composites, nanostructured materials, and advanced material systems. His ORCID record identifies his affiliation with M. S. Ramaiah Institute of Technology and records his academic background in nanoscience and metallurgy.[1]

The research profile presented here is intended as an academic recognition profile associated with the Best Researcher Award category of the Global Mechanics Awards. Bibliographic and researcher-identification information should be interpreted alongside the linked scholarly records and institutional sources.

Abstract

Subramanian K.R.V is associated with research spanning advanced materials and energy-related material systems, with documented work in areas including graphene, nanostructured electrodes, supercapacitors, lithium-ion battery materials, nanocomposites, and related electrochemical applications. His ORCID record identifies a professional affiliation with M. S. Ramaiah Institute of Technology and records a doctoral qualification in nanoscience from the University of Cambridge, following earlier engineering and metallurgy education in India.[1] Institutional research records further document his involvement in publications concerning nanomaterials, energy-storage systems, and advanced material applications.[2]

Keywords

Energy Materials; Nanoscience; Nanomaterials; Graphene; Supercapacitors; Lithium-Ion Batteries; Energy Storage; Nanocomposites; Electrochemical Materials; Advanced Materials; Metallurgy; Mechanical Engineering; Materials Science.

Introduction

Research in energy materials combines materials science, nanotechnology, electrochemistry, and engineering to develop materials capable of supporting improved energy conversion and storage. Within this interdisciplinary area, nanostructured electrodes, graphene-based materials, conducting polymers, carbon-based materials, and metal-oxide systems are important research subjects because their structure and surface characteristics can influence electrochemical behavior and device performance.

Subramanian K.R.V.’s documented research portfolio includes contributions in these broad areas. His publication record contains studies of lithium-ion battery electrodes, supercapacitor electrodes, graphene-polymer systems, nanostructured materials, and other advanced materials relevant to energy-storage technologies.[1][2]

Research Profile

The research profile of Subramanian K.R.V. reflects an interdisciplinary connection between materials engineering, nanoscience, and energy-storage technologies. His ORCID record lists his professional position at M. S. Ramaiah Institute of Technology and identifies his doctoral education in Nanoscience at the University of Cambridge. The same record lists earlier qualifications in Metallurgy from the Indian Institute of Science and Metallurgical Engineering from the National Institute of Technology Tiruchirappalli.[1]

The documented research works include investigations into graphene, lithium-ion battery electrode materials, supercapacitor systems, carbon-based materials, nanofibres, and composite materials. These topics position the research profile within the wider field of advanced energy materials and functional nanomaterials.[1]

Research Contributions

A notable component of the documented research concerns electrochemical energy-storage materials. Published work includes studies involving LiMnPO4-based composite electrodes for lithium-ion batteries and PbO2-based composite electrodes for energy-storage applications. These studies illustrate the application of nanostructured and composite material approaches to electrochemical electrode development.[1]

Another research direction involves graphene and conducting-polymer systems. A study on graphene-poly(3,4-ethylenedioxythiophene) composite electrodes investigated materials for supercapacitor applications, while another reported LiMn2O4-graphene hybrid composites as rechargeable electrodes for energy-storage devices.[1]

More recent research records also include work on the bending and twisting behavior of multilayer graphene and high-energy processing of natural-fibre composites, indicating continued activity across both nanomaterials and advanced composite-material systems.[1]

Publications

Selected publications documented through the researcher’s ORCID-linked scholarly record include the following works:

  • “High energy processing of natural fiber composites.” Next Research. DOI: 10.1016/j.nexres.2024.100113.[1]
  • “Bending and twisting behavior of multilayer graphene.” Modern Physics Letters B. DOI: 10.1142/S0217984923420095.[1]
  • “Electrochemical performance of electrophoretically deposited nanostructured LiMnPO4-sucrose derived carbon composite electrodes for lithium ion batteries.” Journal of Nanoscience and Nanotechnology. DOI: 10.1166/jnn.2015.9174.[1]
  • “Electrochemical performance of PbO2 and PbO2-CNT composite electrodes for energy storage devices.” Journal of Nanoscience and Nanotechnology. DOI: 10.1166/jnn.2015.9172.[1]
  • “Electrochemical behaviour of graphene-poly (3,4-ethylenedioxythiophene) (PEDOT) composite electrodes for supercapacitor applications.” Bulletin of Materials Science. DOI: 10.1007/s12034-013-0610-9.[1]
  • “Hybrid Composites of LiMn2O4-Graphene as Rechargeable Electrodes in Energy Storage Devices.” Energy Technology. DOI: 10.1002/ente.201300120.[1]

Research Impact

The supplied scholarly metrics report 3,033 citations, an h-index of 31, and an i10-index of 54. These figures provide quantitative indicators of the visibility of the researcher’s publications within the citation ecosystem. Because scholarly metrics can change over time and can vary between indexing services, the values should be treated as time-dependent indicators rather than permanent measures of research quality.

The publication record also demonstrates research connections across energy storage, graphene, nanocomposites, and advanced materials. For example, a peer-reviewed study involving K. R. V. Subramanian examined flexible supercapacitor electrodes based on nanocellulose and polyaniline with silver nanoparticles, illustrating the application-oriented nature of research in flexible energy-storage materials.[3]

Award Suitability

For an academic recognition category focused on research achievement, the documented profile provides several relevant indicators: an established institutional affiliation, a sustained publication record, research activity in advanced materials and energy-storage technologies, and measurable citation-based scholarly impact.[1]

The subject area of Energy Materials is supported by documented publications involving lithium-ion battery electrodes, supercapacitor materials, graphene composites, nanostructured materials, and related energy-storage systems.[1] Institutional records from Ramaiah Institute of Technology also document research publications involving K. R. V. Subramanian in areas including nanomaterials, graphene, nanofluids, supercapacitors, and advanced composite materials.[2]

On the basis of these documented research indicators, Subramanian K.R.V. presents a profile that is relevant to consideration within the Best Researcher Award category associated with the Global Mechanics Awards. Award suitability remains subject to the applicable nomination criteria, independent assessment procedures, and verification requirements of the awarding organization.

Conclusion

Subramanian K.R.V. has a documented academic and research profile connecting nanoscience, metallurgy, advanced materials, and energy-storage technologies. His scholarly record includes research on graphene, nanostructured electrodes, supercapacitors, lithium-ion battery materials, and composite systems, while his institutional and researcher-identification records provide supporting evidence of sustained academic activity.[1][2]

The combination of interdisciplinary research activity, documented publications, and the supplied citation metrics provides a substantive basis for presenting this profile for academic recognition. The evidence should be reviewed alongside current bibliographic records and the formal evaluation criteria established for the award.

References

  1. ORCID. (n.d.). Subramanian K.R.V — ORCID record 0000-0002-8809-1992. ORCID.
    https://orcid.org/0000-0002-8809-1992
  2. Ramaiah Institute of Technology. (n.d.). Research Publications — Aerospace Engineering. M. S. Ramaiah Institute of Technology.
    https://www.msrit.edu/department/research.html?dept=aerospace.html
  3. Sasi, S., Krishna, C. A., Sugunan, S. K., Chandran, A., Nair, P. R., Subramanian, K. R. V., & Mathew, S. (2021). Low cost, high efficiency flexible supercapacitor electrodes made from areca nut husk nanocellulose and silver nanoparticle embedded polyaniline. RSC Advances. DOI: 10.1039/d1ra04920h.
    https://doi.org/10.1039/d1ra04920h
    https://pubmed.ncbi.nlm.nih.gov/35479563/
  4. Subramanian, K. R. V., et al. (2014). Hybrid Composites of LiMn2O4-Graphene as Rechargeable Electrodes in Energy Storage Devices. Energy Technology. DOI: 10.1002/ente.201300120.
    https://doi.org/10.1002/ente.201300120
  5. Subramanian, K. R. V., et al. (2014). Electrochemical behaviour of graphene-poly (3,4-ethylenedioxythiophene) (PEDOT) composite electrodes for supercapacitor applications. Bulletin of Materials Science. DOI: 10.1007/s12034-013-0610-9.
    https://doi.org/10.1007/s12034-013-0610-9

Mamadou Bhoye BAH | Bio materials | Academic Excellence in Mechanics Award

Mr. Mamadou Bhoye BAH | Bio materials | Academic Excellence in Mechanics Award

Mr. Mamadou Bhoye BAH, at Jomot Kenyatta University, Kenya.

Mamadou Bhoye Bah 🇬🇳 is a passionate Mechatronics and Telecommunications Engineer currently pursuing his MSc in Mechatronics Engineering at the Pan African University Institute for Basic Sciences, Technology, and Innovation (PAUSTI) at JKUAT, Kenya 🇰🇪. With a foundation in Electrical Engineering (Telecommunication) from the University of Conakry, he is now immersed in research on additive manufacturing (AM), focusing on filament production for 3D printers. Bhoye has been an educator and a continuous learner, participating in international technical schools in Germany and Kenya to enhance his knowledge of AM technologies. Beyond academics, he’s committed to educational reform and innovation in Guinea, where he taught physics and inspired students. Bhoye is driven by creativity, leadership, and a passion for technology. He dreams of joining world-class research programs and building sustainable solutions for African communities 🌍. Fluent in French and English, Bhoye combines technical brilliance with communication and collaboration.

Professional Profile

ORCID

🎓 Education

Mamadou Bhoye Bah’s educational journey reflects his dedication to engineering and innovation. He is currently enrolled in a Master of Science in Mechatronics Engineering (2023–2025) at the Pan African University Institute for Basic Sciences, Technology, and Innovation (PAUSTI), JKUAT, Kenya, under a prestigious scholarship 🌟. His undergraduate degree was earned at the Université Gamal Abdel Nasser de Conakry, Guinea (2014–2018), where he specialized in Telecommunications Engineering, focusing on electronics and micro-electronics 📡. Before his university studies, Bhoye completed his Advanced Level in Mathematics and Science (2011–2014) from Général Lansana Conté High School in Sangaredi, Guinea 📘. These academic milestones laid a solid foundation for his expertise in mechatronics, telecommunications, and additive manufacturing. In addition, he has obtained several certificates including Data Science with Python (Simplilearn) and completed workshops on Entrepreneurship & Innovation—reflecting his interdisciplinary learning mindset.

💼 Experience

Bhoye’s professional experience spans both academia and hands-on engineering work. From 2021 to 2022, he served as a Physics Teacher at Lycée N’Dama in Boké, where he led classes of over 20 students, emphasizing interactive learning and critical thinking. Prior to that, from 2018 to 2021, he taught at GS La Fleur, also in Boké. These roles allowed him to strengthen his communication and mentorship skills 🎓. In 2024, Bhoye participated in two editions of the SustainAM School, in Germany and Kenya, where he worked on additive manufacturing techniques such as binder jetting, paste extrusion, and bio-based materials 🖨️. He also undertook intensive English training at ILM Guinée (2022) and computer training at C.A.L.I Center (2014). Through these diverse roles, he has built a holistic skill set—blending technical mastery, teaching excellence, and innovation in emerging technologies 🚀.

🔬 Research Interests

Bhoye’s current research focuses on Additive Manufacturing (AM)—particularly the production of filaments for 3D printing 🧵🖨️. He is keen on developing sustainable and bio-based materials that can revolutionize manufacturing in Africa and beyond. His interests span advanced mechatronic system design, micro-electromechanical systems (MEMS), modeling and simulation, and application of laser systems. He is passionate about integrating advanced control systems with manufacturing automation to enable smarter, more efficient industrial processes. In the telecommunications domain, Bhoye explores analog and programmable integrated circuits, as well as logic circuit design 📡. His interdisciplinary mindset blends hardware, software, and mechanical design for impactful engineering. Additionally, he is interested in entrepreneurship, innovation in education, and using design thinking to solve societal problems. With growing interest in coding and simulation tools like Python, MATLAB, Tinkercad, and Factory IO, Bhoye is set to make contributions to smart, sustainable engineering 🌍.

🏆 Awards and Achievements

Mamadou Bhoye Bah has demonstrated excellence both in academics and extracurricular pursuits. He was awarded a fully-funded scholarship by the Pan African University (PAUSTI), a testament to his academic merit and leadership potential 🎓🌍. At PAUSTI, he also won the SPORTSMANSHIP Program Football and Volleyball Competitions, showcasing his strong team spirit and discipline in sports ⚽🏐. Bhoye has also received multiple certificates of achievement, including those from the Entrepreneurship and Innovation Workshop and the Simplilearn SkillUp Program in Data Science with Python. His selection to attend the prestigious SustainAM Schools in Germany and Kenya reflects his growing reputation in the field of additive manufacturing. These recognitions not only highlight his intellectual curiosity and technical excellence but also emphasize his well-rounded personality and commitment to personal and professional growth 🌟.

📚 Top Noted Publications

As of now, Mamadou Bhoye Bah is in the early stages of his research career and has not published peer-reviewed journal articles yet. However, he is actively working on research in additive manufacturing, specifically filament development for 3D printers, and aims to publish in reputable international journals soon 🧾. He is currently preparing manuscripts to submit to journals such as Additive Manufacturing, Journal of Manufacturing Processes, and Materials Today.
👉 Stay tuned—Bhoye’s research publications will be available soon and will be shared with citation and hyperlinks here upon release! 🔗🧠

Conclusion

Mamadou Bhoye Bah is a promising and committed young researcher with solid academic foundations, growing expertise in additive manufacturing, and a blend of technical, leadership, and teaching capabilities. His work aligns with modern trends in mechanical and mechatronic systems.