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Deep learning-based segmentation of lithium-ion battery microstructures enhanced by artificially generated electrodes

Engineering and Technology

Deep learning-based segmentation of lithium-ion battery microstructures enhanced by artificially generated electrodes

S. Müller, C. Sauter, et al.

Dive into groundbreaking research by Simon Müller, Christina Sauter, Ramesh Shunmugasundaram, Nils Wenzler, Vincent De Andrade, Francesco De Carlo, Ender Konukoglu, and Vanessa Wood that unveils a deep-learning approach for accurate 3D segmentation of lithium-ion battery electrodes, enhancing our understanding of battery performance like never before.

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~3 min • Beginner • English
Abstract
Accurate 3D representations of lithium-ion battery electrodes, in which the active particles, binder and pore phases are distinguished and labeled, can assist in understanding and ultimately improving battery performance. Here, we demonstrate a methodology for using deep-learning tools to achieve reliable segmentations of volumetric images of electrodes on which standard segmentation approaches fail due to insufficient contrast. We implement the 3D U-Net architecture for segmentation, and, to overcome the limitations of training data obtained experimentally through imaging, we show how synthetic learning data, consisting of realistic artificial electrode structures and their tomographic reconstructions, can be generated and used to enhance network performance. We apply our method to segment x-ray tomographic microscopy images of graphite-silicon composite electrodes and show it is accurate across standard metrics. We then apply it to obtain a statistically meaningful analysis of the microstructural evolution of the carbon-black and binder domain during battery operation.
Publisher
Nature Communications
Published On
Oct 27, 2021
Authors
Simon Müller, Christina Sauter, Ramesh Shunmugasundaram, Nils Wenzler, Vincent De Andrade, Francesco De Carlo, Ender Konukoglu, Vanessa Wood
Tags
lithium-ion battery
3D segmentation
deep learning
tomographic microscopy
electrode images
microstructural evolution
graphite-silicon
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