Aman Kumar Bhonsle | Biofuel | Young Scientist Award

Dr. Aman Kumar Bhonsle | Biofuel | Young Scientist Award

CSIR-Indian Institute of Petroleum | India

Dr. Aman Kumar Bhonsle is a chemical engineer specializing in biodiesel production, waste valorization, and sustainable energy technologies. His research focuses on developing novel homogenous and heterogeneous catalytic processes, techno-economic assessments, and life cycle analyses for biofuels and biolubricants. He has contributed to the synthesis and optimization of multifunctional additives to improve fuel and lubricant properties. His work integrates experimental, modeling, and process optimization approaches to enhance sustainability and efficiency in bioenergy production. He has published extensively in high-impact journals on biodiesel, bio-based surfactants, and renewable energy. His research emphasizes practical applications, environmental impact, and societal relevance in renewable energy systems. Overall, his work demonstrates innovation, scientific rigor, and a commitment to advancing sustainable energy solutions, with 416 citations, an h-index of 11, and an i10-index of 12.

Citation Metrics (Google Scholar)

450

360

270

180

90

0

Citations
416

Documents
30

h-index
11


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Featured Publications

 

Nabila Tabassum | Chemical Engineering | Excellence in Research Award

Ms. Nabila Tabassum | Chemical Engineering
| Excellence in Research Award

Shiv Nadar Institution fo Eminence, Greater Noida | India

Ms. Nabila Tabassum research trajectory focuses on the intersection of computational materials science, catalysis, and high-temperature materials engineering, emphasizing atomistic simulations and experimental validation for sustainable technological advancement. The work encompasses Density Functional Theory (DFT) and Molecular Dynamics (MD) simulations for understanding the structural, mechanical, and thermal behavior of High Entropy Alloys (HEAs), High Entropy Ceramics (HECs), and High Entropy Oxides (HEOs), specifically for applications in thermal barrier coatings and energy systems. The studies explore thermal stability, phase transformations, and electronic properties of multi-component alloys such as AlCoCrFeNi, contributing to the prediction of thermodynamic behavior and optimization of mechanical strength under extreme conditions. Experimental research complements computational findings through synthesis, sintering, and characterization of high entropy materials, bridging modeling with practical performance. Additional work includes catalytic conversion of ethanol and methanol into hydrocarbons, glycerol reforming for hydrogen generation, and development of amine–ionic liquid-based solvents for CO₂ capture, aligning with global sustainability goals. The outcomes, disseminated through peer-reviewed journals, book chapters, and international conferences, demonstrate a cohesive integration of computational chemistry, thermomechanical modeling, and green energy research, advancing the understanding and design of next-generation materials for energy-efficient and environmentally resilient applications.

Featured Publication

Tabassum, N. (2025). Thermal stability assessment of mixed phase AlCoCrFeNi high entropy alloy: In silico studies. Physica B: Condensed Matter. https://doi.org/[Insert DOI if available]