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机器学习辅助设计高韧性热固性聚合物。

Machine-Learning-Assisted Design of Highly Tough Thermosetting Polymers.

机构信息

Shanghai Key Laboratory of Advanced Polymeric Materials, Key Laboratory for Ultrafine Materials of Ministry of Education, Frontiers Science Center for Materiobiology and Dynamic Chemistry, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai200237, China.

出版信息

ACS Appl Mater Interfaces. 2022 Dec 14;14(49):55004-55016. doi: 10.1021/acsami.2c14290. Epub 2022 Dec 1.

Abstract

Despite advances in machine learning for accurately predicting material properties, forecasting the performance of thermosetting polymers remains a challenge due to the sparsity of historical experimental data and their complicated crosslinked structures. We proposed a machine-learning-assisted materials genome approach (MGA) for rapidly designing novel epoxy thermosets with excellent mechanical properties (high tensile moduli, high tensile strength, and high toughness) through high-throughput screening in a vast chemical space. Machine-learning models were established by combining attention- and gate-augmented graph convolutional networks, multilayer perceptrons, classical gel theory, and transfer learning from small molecules to polymers. Proof-of-concept experiments were carried out, and the structures designed by the MGA were verified. Gene substructures affecting the modulus, strength, and toughness were also extracted, revealing the mechanisms of polymers with high mechanical properties. The developed strategy can be employed to design other thermosetting polymers efficiently.

摘要

尽管机器学习在准确预测材料性能方面取得了进展,但由于历史实验数据的稀疏性及其复杂的交联结构,预测热固性聚合物的性能仍然是一个挑战。我们提出了一种基于机器学习的材料基因组方法(MGA),通过在广阔的化学空间中进行高通量筛选,快速设计具有优异机械性能(高拉伸模量、高拉伸强度和高韧性)的新型环氧树脂热固性塑料。通过结合注意力和门控增强图卷积网络、多层感知机、经典凝胶理论以及从小分子到聚合物的迁移学习,建立了机器学习模型。进行了概念验证实验,并验证了 MGA 设计的结构。还提取了影响模量、强度和韧性的基因亚结构,揭示了具有高机械性能的聚合物的机理。所开发的策略可用于有效地设计其他热固性聚合物。

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