Collaborative Research: DMREF: NSF-DFG: Atoms-to-Device Closed-Loop Predictive Design of Electro-Optic Materials for Quantum Photonic Circuits

NSF Award Search · 01002526DB NSF RESEARCH & RELATED ACTIVIT · $507,862 · view on nsf.gov ↗

Abstract

Non-technical Description: A central goal of Materials Genome Initiative is to predict superior intrinsic material properties on the atomic scale and translate them to superior technologies we can touch and hold. However, most such material discoveries are lost in translation due to the “mesoscale cliff.” Materials promising on the nanoscale may fail in devices where microstructures up to hundreds of micrometer in size dominate device performance. This team addresses this materials challenge to develop a fundamental knowledge base to deploy the next generation of cryogenic electro-optic materials integrated on silicon for chip-scale quantum integrated circuits. The electro-optic effect describes a material’s optical refractive index change upon the application of an electric field. Electro-modulators power our internet today by converting electrical to optical signals. They are also fundamental building blocks for the emerging scalable optical quantum computing hardware, on-chip trapped ion quantum computing schemes and developments in low temperature science. With these, new materials’ challenges arise, in that, electro-optic modulators must now respond in the gigahertz frequency range, be operated at cryogenic temperatures with low energy budget and must be integrated directly on silicon. This requires materials with cryogenic electro-optic coefficients that are many orders of magnitude higher than the current industry standard. In addition, they require large index and low

Key facts

NSF award ID
2522898
Awardee
New Jersey Institute of Technology (NJ)
SAM.gov UEI
SGBMHQ7VXNH5
PI
Dibakar Datta
Primary program
01002526DB NSF RESEARCH & RELATED ACTIVIT
All programs
International Partnerships, (MGI) Materials Genome Initiative, OFFICE OF MULTIDISCIPLINARY AC, GERMANY (F.R.G.), QUANTUM INFORMATION SCIENCE, DMREF
Estimated total
$507,862
Funds obligated
$507,862
Transaction type
Standard Grant
Period
10/01/2025 → 09/30/2029