Ajay Yadav
University of California Berkeley, University of California, Berkeley, Indian Institute of Technology Kanpur
About
Ajay Yadav is Post-Doctoral researcher in Electrical Engineering & Computer Sciences department at University of California, Berkeley. He did his Ph.D. and Masters in Materials Science & Engineering department at University of California, Berkeley. Prior to joining Berkeley, he received his Bachelor’s degree in Materials Science & Engineering from one of the premier institutes of India, Indian Institute of Technology (I.I.T.) Kanpur. His research interest lies in complex oxides (ex. ABO3) and binary oxides (ex. HfO2) for thermoelectric, ferroelectric and multiferroic properties. He is also interested in Negative Capacitance effect studied in ferroelectric/dielectric heterostructures. Ajay has extensive experience in synthesis and characterization of oxide thin films grown via Pulsed Laser Deposition technique, and published several papers in peer-reviewed journals including high impact journals such as Nature and Nature Materials.
Employment
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University of California Berkeley Post-Doctoral Researcher2016 - Present
Education
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University of California, Berkeley Dr.2012 - 2016
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University of California Berkeley Masters2010 - 2011
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Indian Institute of Technology Kanpur Bachelors of Technology2005 - 2009
Projects & Funding
Projects & funding information is unavailable.
Publications (19)
- Optical creation of a supercrystal with three-dimensional nanoscale periodicity Save
- Improved Subthreshold Swing and Short Channel Effect in FDSOI n-Channel Negative Capacitance Field Effect Transistors Save
- Emergent chirality in the electric polarization texture of titanate superlattices Save
- A Nitrided Interfacial Oxide for Interface State Improvement in Hafnium Zirconium Oxide-Based Ferroelectric Transistor Technology Save
- Interface Engineering of Domain Structures in BiFeO3 Thin Films Save
- Orientation-controllable growth of Co3O4 single nanocrystals using a BiCoO3 target by pulsed laser deposition Save
- High Speed Epitaxial Perovskite Memory on Flexible Substrates Save
- Stability of Polar Vortex Lattice in Ferroelectric Superlattices Save
- Stabilization of ferroelectric phase in tungsten capped Hf0.8Zr0.2O2 Save
- Phase coexistence and electric-field control of toroidal order in oxide superlattices Save