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一种通过高通量筛选和自动化数据分析得出的氧储存能力替代指标。

A proxy for oxygen storage capacity from high-throughput screening and automated data analysis.

作者信息

Quayle Jack J, Katsoulidis Alexandros P, Claridge John B, York Andrew P E, Thompsett David, Rosseinsky Matthew J

机构信息

Department of Chemistry, University of Liverpool Crown Street Liverpool L69 7ZD UK

Johnson Matthey Technology Centre Blounts Court Road Reading RG4 9NH UK.

出版信息

Chem Sci. 2023 Oct 23;14(44):12621-12636. doi: 10.1039/d3sc03558a. eCollection 2023 Nov 15.

DOI:10.1039/d3sc03558a
PMID:38020362
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10646963/
Abstract

Oxygen storage and release is a foundational part of many key pathways in heterogeneous catalysis, such as the Mars-van Krevelen mechanism. However, direct measurement of oxygen storage capacity (OSC) is time-consuming and difficult to parallelise. To accelerate the discovery of stable high OSC rare-earth doped ceria-zirconia oxygen storage catalysts, a high-throughput robotic-based co-precipitation synthesis route was coupled with sequentially automated powder X-ray diffraction (PXRD), Raman and thermogravimetric analysis (TGA) characterisation of the resulting materials libraries. Automated extraction of data enabled rapid trend identification and provided a data set for the development of an OSC prediction model, investigating the significance of each extracted quantity towards OSC. The optimal OSC prediction model produced incorporated variables from only fast-to-measure analytical techniques and gave predicted values of OSC that agreed with experimental observations across an independent validation set. Those measured quantities that feature in the model emerge as proxies for OSC performance. The ability to predict the OSC of the materials accelerates the discovery of high-capacity oxygen storage materials and motivates the development of similar high-throughput workflows to identify candidate catalysts for other heterogeneous transformations.

摘要

氧储存与释放是多相催化中许多关键途径的基础部分,例如马斯-范克雷维伦机理。然而,直接测量储氧能力(OSC)既耗时又难以并行进行。为了加速发现具有稳定高OSC的稀土掺杂二氧化铈-氧化锆储氧催化剂,基于高通量机器人的共沉淀合成路线与所得材料库的顺序自动粉末X射线衍射(PXRD)、拉曼光谱和热重分析(TGA)表征相结合。数据的自动提取能够快速识别趋势,并为开发OSC预测模型提供数据集,研究每个提取量对OSC的重要性。最佳的OSC预测模型仅纳入了来自快速测量分析技术的变量,并给出了与独立验证集上的实验观测结果相符的OSC预测值。模型中出现的那些测量量成为了OSC性能的代理指标。预测材料OSC的能力加速了高容量储氧材料的发现,并推动了类似高通量工作流程的开发,以识别用于其他多相转化的候选催化剂。

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本文引用的文献

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