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Catalysis by Design - Theoretical and Experimental Studies of Model Catalysts

机译:通过设计催化 - 模型催化剂的理论和实验研究

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The development of new catalytic materials is still dominated by trial-and-error methods, even though the experimental and theoretical bases for their characterization have improved dramatically in recent years. Although it has been successful, the empirical development of catalytic materials is time consuming and expensive with no guarantee of success. We have been exploring computationally complex but experimentally simple systems to establish a "catalysis by design" protocol that combines the power of theory and experiment. We hope to translate the fundamental insights directly into a complete catalyst system that is technologically relevant. The essential component of this approach is that the catalysts are iteratively examined by both theoretical and experimental methods. This approach involves state-of-the-art first principle density functional theory calculations, experimental design of catalyst sites, and sub-Angstrom resolution imaging with an aberration-corrected electron microscope to characterize the microstructure. We are employing this approach to understand the catalytic sites in oxidation and lean NO{sub}x catalysts. The model material for the oxidation catalyst system is Pt/Al{sub}2O{sub}3 and that for lean NO{sub}x catalysis is Ag/Al{sub}2O{sub}3. We present our initial results on theoretical and experimental studies of the oxidation and reactivity of catalyst clusters towards O, CO, and NO{sub}x. Our theoretical studies indicate that the reaction energetics are strongly dependent on the size of the clusters as well as the extent of oxidation of the clusters. We speculate that the energetics of CO and NO oxidation may be more favorable on the oxidized clusters than on the pure Pt clusters because of the weakened adsorption of the reactants. Experimentally, we have synthesized supported catalysts that contain small metal particles that mimic the theoretical models. We have also synthesized various supported catalysts with larger metal particles. We have studied CO oxidations on these catalysts and the results (including microstructural changes in Pt particles) will also be presented. In addition, we will summarize the results of our study of microstructural changes in supported catalysts, especially Ag/Al{sub}2O{sub}3, exposed to simulated lean NO{sub}x exhaust via the ORNL ex-situ reactor in order to determine the impact of operating conditions on the catalyst.
机译:新的催化材料的发展仍然是试验和误差方法的主导,即使其特征的实验和理论基础近年来急剧提高。虽然它已经成功,但催化材料的经验开发是耗时和昂贵的,而且没有成功的保证。我们一直在探索计算的复杂但实验简单的系统,以建立“通过设计的催化”协议,这些协议结合了理论和实验的力量。我们希望将根本洞察力直接转化为完整的催化剂系统,这些系统在技术相关。这种方法的基本组分是通过理论和实验方法迭代地检查催化剂。该方法涉及最先进的第一原理密度官能理论计算,催化剂位点的实验设计,以及与像差校正的电子显微镜的亚埃分辨率成像,以表征微观结构。我们正在采用这种方法来理解氧化中的催化位点和瘦的NO {Sub} X催化剂。氧化催化剂系统的模型材料是Pt / Al {sub} 2o {sub} 3,并且对于leen {sub} x催化是ag / al {sub} 2o {sub} 3。我们展示了我们的初步结果,理论和实验研究对催化剂簇的氧化和反应性朝向O,CO,NO {} x。我们的理论研究表明,反应能量强烈依赖于群集的大小以及簇的氧化程度。我们推测了CO的能量和氧化的能量可能比纯PT簇更有利,因为反应物的吸附削弱,因此氧化簇比纯PT簇更容易。实验,我们合成了支持的催化剂,其含有模拟理论模型的小金属颗粒。我们还合成了具有较大金属颗粒的各种负载型催化剂。我们还将介绍在这些催化剂上的CO氧化,也可以提出结果(包括Pt颗粒的微观结构变化)。此外,我们将总结我们研究支持的催化剂的微观结构变化的结果,特别是通过ORNL前u反应堆暴露于模拟lex no {sub} x排气的ag /α{sub} 3。确定操作条件对催化剂的影响。

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