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July 8, 2021Chemical Physics Reviews124 citationsOpen Access

Machine learning on neutron and x-ray scattering and spectroscopies

ZCZhantao ChenSLAC National Accelerator LaboratoryNANina AndrejevicArgonne National LaboratoryNDNathan C. DruckerIBM Research - Zurich

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Abstract

Neutron and x-ray scattering represent two classes of state-of-the-art materials characterization techniques that measure materials structural and dynamical properties with high precision. These techniques play critical roles in understanding a wide variety of materials systems from catalysts to polymers, nanomaterials to macromolecules, and energy materials to quantum materials. In recent years, neutron and x-ray scattering have received a significant boost due to the development and increased application of machine learning to materials problems. This article reviews the recent progress in applying machine learning techniques to augment various neutron and x-ray techniques, including neutron scattering, x-ray absorption, x-ray scattering, and photoemission. We highlight the integration of machine learning methods into the typical workflow of scattering experiments, focusing on problems that challenge traditional analysis approaches but are addressable through machine learning, including leveraging the knowledge of simple materials to model more complicated systems, learning with limited data or incomplete labels, identifying meaningful spectra and materials representations, mitigating spectral noise, and others. We present an outlook on a few emerging roles machine learning may play in broad types of scattering and spectroscopic problems in the foreseeable future.

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Cite This Study

Chen et al. (2021) studied this question.

synapsesocial.com/papers/6a0f6aca28c2d29469fe17dehttps://doi.org/10.1063/5.0049111
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