Prashant Singh
Ames National Laboratory, Texas A&M University, SN Bose National Centre for Basic Sciences, Ames Laboratory
About
Prashant Singh, Ph.D., joined the Division of Materials Science and Engineering of Ames National Laboratory as a staff scientist in 2019. Before that, he was a post-doc researcher at Ames National Laboratory and Texas A&M University. He earned his Ph.D. in 2013 from University of Calcutta in Physics. His research melds modern electronic-structure methods to understand physics and many phenomena (e.g., short-range order, phase-transformation, and oxidation) to predict new ones and interpret experiments. He uses his expertise in first-principles method development, data-informatics, and machine-learning to design materials for application in harsh environments such as aerospace propulsion systems, nuclear reactors, turbines, and others. His current research focuses on high-temperature structural materials, functional magnets, and Caloric materials.
Employment
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Ames National Laboratory Scientist2019 - Present
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Texas A&M University Postdoc2019 - 2019
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Ames Laboratory Postdoctoral research associate2014 - 2019
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SN Bose National Centre for Basic Sciences Research Associate2013 - 2014
Education
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SN Bose National Centre for Basic Sciences PhD2007 - 2013
Projects & Funding
Projects & funding information is unavailable.
Publications (79)
- Universal Electronic‐Structure Relationship Governing Intrinsic Magnetic Properties in Permanent Magnets Save
- Achieving high tensile strength and ductility in refractory alloys by tuning electronic structure Save
- From complex magnetic ground states to magnetocaloric effects: a review of rare earth R2In intermetallic compounds Save
- Fermi Surface Nesting and Anomalous Hall Effect in Magnetically Frustrated Mn2PdIn Save
- DuctGPT: A Generative Transformer for Forward Screening of Ductile Refractory Multi-Principal Element Alloys Save
- Short-Range Order and Electronic-Structure Control of Radiation Resistance in Tungsten-Based Multi-Principal-Element Alloys Save
- Metastable-engineered ferromagnetic Fe-Co-Mn-Cr alloys for controlled phases and physical properties Save
- Design and Synthesis of PtPdNiCoMn High‐Entropy Alloy Electrocatalyst for Enhanced Alkaline Hydrogen Evolution Reaction: A Theoretically Supported Predictive Design Approach Save
- Design of lightweight BCC multi-principal element alloys with enhanced hydrogen storage using a machine learning-driven genetic algorithm Save
- An atomistic study connecting underlying dislocation behavior with superior mechanical properties of NiCoCr medium entropy alloy Save