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Using scalable computer vision to automate high-throughput semiconductor characterization

Engineering and Technology

Using scalable computer vision to automate high-throughput semiconductor characterization

A. E. Siemenn, E. Aissi, et al.

Experience a breakthrough in materials characterization! This innovative research by Alexander E. Siemenn, Eunice Aissi, Fang Sheng, Armi Tiihonen, Hamide Kavak, Basita Das, and Tonio Buonassisi introduces automated tools using adaptive computer vision to speed up property characterization by 85 times, transforming the way we analyze mixed-cation perovskites.... show more
Abstract
High-throughput materials synthesis methods, crucial for discovering novel functional materials, face a bottleneck in property characterization. These high-throughput synthesis tools produce 10^4 samples per hour using ink-based deposition while most characterization methods are either slow (conventional rates of 10^1 samples per hour) or rigid (e.g., designed for standard thin films), resulting in a bottleneck. To address this, we propose automated characterization (autocharacterization) tools that leverage adaptive computer vision for an 85x faster throughput compared to non-automated workflows. Our tools include a generalizable composition mapping tool and two scalable auto-characterization algorithms that: (1) autonomously compute the band gaps of 200 compositions in 6 minutes, and (2) autonomously compute the environmental stability of 200 compositions in 20 minutes, achieving 98.5% and 96.9% accuracy, respectively, when benchmarked against domain expert manual evaluation. These tools, demonstrated on the formamidinium (FA) and methylammonium (MA) mixed-cation perovskite system FA1−xMAxPbI3, 0 ≤ x ≤ 1, significantly accelerate the characterization process, synchronizing it closer to the rate of high-throughput synthesis.
Publisher
Nature Communications
Published On
Jun 11, 2024
Authors
Alexander E. Siemenn, Eunice Aissi, Fang Sheng, Armi Tiihonen, Hamide Kavak, Basita Das, Tonio Buonassisi
Tags
high-throughput materials synthesis
automated characterization tools
adaptive computer vision
band gaps
environmental stability
mixed-cation perovskites
property characterization
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