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High-throughput heterogeneous catalyst research

机译:高通量多相催化剂研究

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With the discovery of abundant and low cost crude oil in the early 1900's came the need to create efficient conversion processes to produce low cost fuels and basic chemicals. Enormous investment over the last century has led to the development of a set of highly efficient catalytic processes which define the modern oil refinery and which produce most of the raw materials and fuels used in modern society. Process evolution and development has led to a refining infrastructure that is both dominated and enabled by modern heterogeneous catalyst technologies. Refineries and chemical manufacturers are currently under intense pressure to improve efficiency, adapt to increasingly disadvantaged feedstocks including biomass, lower their environmental footprint, and continue to deliver their products at low cost. This pressure creates a demand for new and more robust catalyst systems and processes that can accommodate them.rnTraditional methods of catalyst synthesis and testing are slow and inefficient, particularly in heterogeneous systems where the structure of the active sites is typically complex and the reaction mechanism is at best ill-defined. While theoretical modeling and a growing understanding of fundamental surface science help guide the chemist in designing and synthesizing targets, even in the most well understood areas of catalysis, the parameter space that one needs to explore experimentally is vast. The result is that the chemist using traditional methods must navigate a complex and unpredictable diversity space with a limited data set to make discoveries or to optimize known systems.rnWe describe here a mature set of synthesis and screening technologies that together form a workflow that breaks this traditional paradigm and allows for rapid and efficient heterogeneous catalyst discovery and optimization. We exemplify the power of these new technologies by describing their use in the development and commercialization of a novel catalyst for the hydrodesulfurization of gasoline distillates having 50% more selectivity and 30% more activity for sulfur removal than the state-of-the-art commercial reference.
机译:1900年代初期,随着大量低成本原油的发现,需要建立有效的转化工艺来生产低成本燃料和基础化学品。上个世纪的巨额投资导致了一系列高效催化工艺的发展,这些工艺定义了现代炼油厂,并生产了现代社会使用的大多数原材料和燃料。工艺的发展和发展已导致了精炼基础设施,该基础设施由现代异构催化剂技术主导和启用。炼厂和化学制造商目前承受着巨大的压力,以提高效率,适应日益不利的原料(包括生物质),降低其环境足迹并继续以低成本交付产品。这种压力产生了对新的,更健壮的催化剂体系和工艺的需求,以适应这些体系。催化剂合成和测试的传统方法缓慢且效率低下,特别是在异质体系中,活性位点的结构通常很复杂,反应机理是最好是定义不清。尽管理论建模和对基础表面科学的日益了解有助于指导化学家设计和合成目标,即使在最广为人知的催化领域,人们也需要进行实验探索的参数空间很大。结果是,使用传统方法的化学家必须使用有限的数据集导航一个复杂且不可预测的多样性空间,以进行发现或优化已知系统。我们在此描述了一套成熟的合成和筛选技术,这些技术共同构成了打破这一点的工作流程。传统范式,并允许快速有效地发现和优化非均相催化剂。我们通过描述这些新技术的力量来说明这些新技术在开发和商业化用于汽油馏出物加氢脱硫的新型催化剂中的应用,该催化剂比最新的商业方法具有高出50%的选择性和30%的脱硫活性。参考。

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