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通过控制多孔三元催化剂颗粒中的互连孔结构来提高CO氧化性能。

Enhancing CO oxidation performance by controlling the interconnected pore structure in porous three-way catalyst particles.

作者信息

Kautsar Duhaul Biqal, Le Phong Hoai, Ando Ai, Tanabe Eishi, Cao Kiet Le Anh, Septiani Eka Lutfi, Hirano Tomoyuki, Ogi Takashi

机构信息

Chemical Engineering Program, Department of Advanced Science and Engineering, Graduate School of Advanced Science and Engineering, Hiroshima University, 1-4-1 Kagamiyama, Higashi Hiroshima, Hiroshima 739-8527, Japan.

Hiroshima Prefectural Institute of Industrial Science and Technology, 3-10-31 Kagamiyama, Higashi Hiroshima, Hiroshima 739-0046, Japan.

出版信息

Nanoscale. 2025 Jan 29;17(5):2841-2851. doi: 10.1039/d4nr03770g.

Abstract

Highly ordered porous structured particles comprising three-way catalyst (TWC) nanoparticles have attracted attention because of their remarkable catalytic performance. However, the conditions for controlling their pore arrangement to form interconnected pore structures remain unclear. In particular, the correlation between framework thickness (distance between pores) or macroporosity and the diffusion of gaseous reactants to achieve a high catalytic performance has not been extensively discussed. Here, the interconnected pore structure was successfully controlled by adjusting the precursor components (, template particle concentration) a template-assisted spray process. A cross-sectional image analysis was conducted to comprehensively examine the internal structure and porous properties (framework thickness and macroporosity) of the porous TWC particles. In addition, we propose mathematical equations to predict the framework thickness and macroporosity, as well as determine the critical conditions that caused the formation of interconnected pores and broken structures in the porous TWC particles. The evaluation of CO oxidation performance revealed that porous TWC particles with an interconnected pore structure, thin framework, and high macroporosity exhibited a high catalytic performance owing to the effective diffusion and utilization of their internal parts. The study findings provide valuable insights into the design of porous TWC particles with interconnected pore structures to enhance exhaust gas emission control in real-world applications.

摘要

包含三元催化剂(TWC)纳米颗粒的高度有序多孔结构颗粒因其卓越的催化性能而备受关注。然而,控制其孔排列以形成相互连接的孔结构的条件仍不明确。特别是,框架厚度(孔之间的距离)或大孔隙率与气态反应物扩散以实现高催化性能之间的相关性尚未得到广泛讨论。在此,通过调节前驱体成分(模板颗粒浓度),采用模板辅助喷雾工艺成功控制了相互连接的孔结构。进行了横截面图像分析,以全面研究多孔TWC颗粒的内部结构和多孔性质(框架厚度和大孔隙率)。此外,我们提出了数学方程来预测框架厚度和大孔隙率,并确定导致多孔TWC颗粒中形成相互连接的孔和破碎结构的临界条件。CO氧化性能评估表明,具有相互连接的孔结构、薄框架和高孔隙率的多孔TWC颗粒由于其内部部分的有效扩散和利用而表现出高催化性能。该研究结果为设计具有相互连接的孔结构的多孔TWC颗粒提供了有价值的见解,以增强实际应用中的废气排放控制。

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