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Targeted materials discovery using Bayesian algorithm execution

Chemistry

Targeted materials discovery using Bayesian algorithm execution

S. R. Chitturi, A. Ramdas, et al.

This innovative research by Sathya R. Chitturi and team introduces a revolutionary framework that leverages Bayesian optimization for rapid materials discovery. By employing three ingenious data collection strategies, the team demonstrates a significant leap in efficiency for synthesizing materials like TiO2 nanoparticles and magnetic substances.... show more
Abstract
Rapid discovery and synthesis of future materials requires intelligent data acquisition strategies to navigate large design spaces. A popular strategy is Bayesian optimization, which aims to find candidates that maximize material properties; however, materials design often requires finding specific subsets of the design space which meet more complex or specialized goals. We present a framework that captures experimental goals through straightforward user-defined filtering algorithms. These algorithms are automatically translated into one of three intelligent, parameter-free, sequential data collection strategies (SwitchBAX, InfoBAX, and MeanBAX), bypassing the time-consuming and difficult process of task-specific acquisition function design. Our framework is tailored for typical discrete search spaces involving multiple measured physical properties and short time-horizon decision making. We demonstrate this approach on datasets for TiO2 nanoparticle synthesis and magnetic materials characterization, and show that our methods are significantly more efficient than state-of-the-art approaches. Overall, our framework provides a practical solution for navigating the complexities of materials design, and helps lay groundwork for the accelerated development of advanced materials.
Publisher
npj Computational Materials
Published On
Jul 18, 2024
Authors
Sathya R. Chitturi, Akash Ramdas, Yue Wu, Brian Rohr, Stefano Ermon, Jennifer Dionne, Felipe H. da Jornada, Mike Dunne, Christopher Tassone, Willie Neiswanger, Daniel Ratner
Tags
materials discovery
Bayesian optimization
data acquisition
TiO2 nanoparticles
magnetic materials
data collection strategies
efficient synthesis
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