Dataset of Solution-based Inorganic Materials Synthesis Procedures Extracted from the Scientific Literature
Dataset en
Authors
ZW
Zheren Wang
OK
Olga Kononova
KC
Kevin Cruse
Abstract
1 min read
In this work, we applied advanced machine learning and natural language processing techniques to construct a dataset of 35,675 solution-based synthesis procedures extracted from the scientific literature. Each procedure contains essential synthesis information including the precursors and target materials, their quantities, and the synthesis actions and corresponding attributes. Every procedure is also augmented with the reaction formula. Through this work, we are making freely available the first large dataset of solution-based inorganic materials synthesis procedures.
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