Papers

9

Total Citations

227

H-Index

7

About

Kedar Hippalgaonkar is a pioneering researcher at the intersection of materials science, machine learning, and laboratory automation, with a focus on accelerating the discovery and optimization of functional materials. His work is perhaps best known for advancing knowledge-integrated machine learning frameworks for materials discovery, a contribution that has already garnered over 134 citations since 2023, reflecting its significant influence on the field. Hippalgaonkar has been instrumental in developing self-driving laboratories and materials acceleration platforms, designing automated, closed-loop systems that dramatically reduce human intervention in complex experimental workflows — from high-throughput graphene film screening to photo-electrocatalytic materials discovery for renewable energy applications. His robotics-driven approaches address real-world challenges such as viscous liquid handling and pH adjustment, combining physics-informed machine learning with automated pipetting systems to solve problems that have long relied on tedious manual trial-and-error. Beyond automation, his research extends into the thermoelectric properties of novel 2D materials such as PdSe₂, demonstrating breadth across both computational and experimental domains. Collectively, his contributions are reshaping how scientists design experiments, positioning autonomous, data-driven platforms as the future of materials research.

Research Focus

Key Achievements

7
H-Index
9
Papers
227
Total Citations
25
Avg Citations/Paper
🏆 Most Cited Paper
Knowledge-integrated machine learning for materials: lessons from gameplaying and robotics
134 citations · 2023
📈 Most Prolific Year: 2023 (5 Papers)
🤝 Key Collaborators: 51
🏛 Institutions: Agency for Science, Technology and Research, Institute of Materials Research and Engineering

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 17 days ago