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材料信息学:材料科学中的统计建模

Materials Informatics: Statistical Modeling in Material Science.

作者信息

Yosipof Abraham, Shimanovich Klimentiy, Senderowitz Hanoch

机构信息

Department of Business Administration, Peres Academic Center, Rehovot, 76102, Israel.

College of Law & Business, Ramat-Gan, 26 Ben Gurion Street, Israel.

出版信息

Mol Inform. 2016 Dec;35(11-12):568-579. doi: 10.1002/minf.201600047. Epub 2016 Aug 31.

Abstract

Material informatics is engaged with the application of informatic principles to materials science in order to assist in the discovery and development of new materials. Central to the field is the application of data mining techniques and in particular machine learning approaches, often referred to as Quantitative Structure Activity Relationship (QSAR) modeling, to derive predictive models for a variety of materials-related "activities". Such models can accelerate the development of new materials with favorable properties and provide insight into the factors governing these properties. Here we provide a comparison between medicinal chemistry/drug design and materials-related QSAR modeling and highlight the importance of developing new, materials-specific descriptors. We survey some of the most recent QSAR models developed in materials science with focus on energetic materials and on solar cells. Finally we present new examples of material-informatic analyses of solar cells libraries produced from metal oxides using combinatorial material synthesis. Different analyses lead to interesting physical insights as well as to the design of new cells with potentially improved photovoltaic parameters.

摘要

材料信息学致力于将信息学原理应用于材料科学,以协助新型材料的发现与开发。该领域的核心是数据挖掘技术的应用,尤其是机器学习方法,通常称为定量构效关系(QSAR)建模,用于推导各种与材料相关“活性”的预测模型。此类模型可加速具有优良性能的新型材料的开发,并深入了解控制这些性能的因素。在此,我们对药物化学/药物设计与材料相关的QSAR建模进行比较,并强调开发新型材料特定描述符的重要性。我们调研了材料科学领域最近开发的一些QSAR模型,重点关注含能材料和太阳能电池。最后,我们展示了使用组合材料合成法对金属氧化物制成的太阳能电池库进行材料信息学分析的新示例。不同的分析得出了有趣的物理见解,并促成了具有潜在改进光伏参数的新型电池的设计。

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