Kaolin-derived ZSM-5 zeolite encapsulated with ultra-low loading of Pt catalysts for synergetic hydrocarbon adsorption/oxidation application

IF 4.8 3区 材料科学 Q1 CHEMISTRY, APPLIED
Langchuan Tian, Haotian Wang, Qijie Yi, Meijing Chen, Shengwei Tang, Wenxiang Tang
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Abstract

The regulations for emissions from internal combustion engine vehicles were becoming increasingly stringent, necessitating the development of cost-effective, high-performance purification materials. In this study, a HCs trap of kaolin-based ZSM-5 zeolite encapsulated ultra-low loading of Pt, with dual functions of adsorption and oxidation, was synthesized by a ligand-assisted hydrothermal method (Pt0.1@ZSM-5). The results of the corresponding adsorption-oxidation test demonstrated that the degradation efficiency of Pt0.1@ZSM-5 on propene reached 89.6 %, which could effectively reduce propene emission during cold-start period. More importantly, the degradation efficiency of Pt0.1@ZSM-5 on propene reached 67.9 % at the low temperature stage of 60 °C–160 °C. The primary reason for this was that the Pt0.1@ZSM-5 sample demonstrated exceptional catalytic activity with regard to propene oxidation, exhibiting a T90 of 192 °C. The confinement effect of zeolite resulted in the Pt0.1@ZSM-5 exhibiting a smaller nanoparticle size, an abundance of acidic sites, and a higher ratio of adsorbed oxygen. These properties contributed to the effective deep oxidation of propene. Furthermore, the degradation efficiency of propene was sustained at a high level (around 95 %) throughout the course of five adsorption-oxidation cycle tests. This study presented a novel approach for the functionalization and utilization of kaolin and provides guidance for its application in exhaust emissions during the cold-start period.

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来源期刊
Microporous and Mesoporous Materials
Microporous and Mesoporous Materials 化学-材料科学:综合
CiteScore
10.70
自引率
5.80%
发文量
649
审稿时长
26 days
期刊介绍: Microporous and Mesoporous Materials covers novel and significant aspects of porous solids classified as either microporous (pore size up to 2 nm) or mesoporous (pore size 2 to 50 nm). The porosity should have a specific impact on the material properties or application. Typical examples are zeolites and zeolite-like materials, pillared materials, clathrasils and clathrates, carbon molecular sieves, ordered mesoporous materials, organic/inorganic porous hybrid materials, or porous metal oxides. Both natural and synthetic porous materials are within the scope of the journal. Topics which are particularly of interest include: All aspects of natural microporous and mesoporous solids The synthesis of crystalline or amorphous porous materials The physico-chemical characterization of microporous and mesoporous solids, especially spectroscopic and microscopic The modification of microporous and mesoporous solids, for example by ion exchange or solid-state reactions All topics related to diffusion of mobile species in the pores of microporous and mesoporous materials Adsorption (and other separation techniques) using microporous or mesoporous adsorbents Catalysis by microporous and mesoporous materials Host/guest interactions Theoretical chemistry and modelling of host/guest interactions All topics related to the application of microporous and mesoporous materials in industrial catalysis, separation technology, environmental protection, electrochemistry, membranes, sensors, optical devices, etc.
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