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首页> 外文期刊>Philosophical transactions of the Royal Society. Mathematical, physical, and engineering sciences >Catalyst design for enhanced sustainability through fundamental surface chemistry
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Catalyst design for enhanced sustainability through fundamental surface chemistry

机译:通过基本表面化学增强可持续性的催化剂设计

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Decreasing energy consumption in the production of platform chemicals is necessary to improve the sustainability of the chemical industry, which is the largest consumer of delivered energy. The majority of industrial chemical transformations rely on catalysts, and therefore designing new materials that catalyse the production of important chemicals via more selective and energy-efficient processes is a promising pathway to reducing energy use by the chemical industry. Efficiently designing new catalysts benefits from an integrated approach involving fundamental experimental studies and theoretical modelling in addition to evaluation of materials under working catalytic conditions. In this review, we outline this approach in the context of a particular catalyst-nanoporous gold (npAu)-which is an unsupported, dilute AgAu alloy catalyst that is highly active for the selective oxidative transformation of alcohols. Fundamental surface science studies on Au single crystals and AgAu thin-film alloys in combination with theoretical modelling were used to identify the principles which define the reactivity of npAu and subsequently enabled prediction of new reactive pathways on this material. Specifically, weak van der Waals interactions are key to the selectivity of Au materials, including npAu. We also briefly describe other systems in which this integrated approach was applied.
机译:减少平台化学品生产中的能源消耗对于提高化学工业的可持续性是必不可少的,而化学工业是已交付能源的最大消耗者。大多数工业化学转化都依赖于催化剂,因此,设计通过更选择性和更节能的方法催化重要化学产品生产的新材料是减少化学工业能源使用的有希望的途径。有效设计新催化剂得益于一种综合方法,该方法涉及基础实验研究和理论建模,此外还可以在工作催化条件下评估材料。在这篇综述中,我们在特定的催化剂-纳米多孔金(npAu)的背景下概述了这种方法,该催化剂是一种无载体的稀AgAu合金催化剂,对醇的选择性氧化转化具有很高的活性。结合理论模型对Au单晶和AgAu薄膜合金进行了基础表面科学研究,以确定了定义npAu反应性的原理,并随后预测了该材料的新反应途径。具体来说,弱的范德华相互作用是包括npAu在内的Au材料选择性的关键。我们还简要描述了应用此集成方法的其他系统。

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