Coaxial 3D Printing of Zeolite‐Based Core–Shell Monolithic Cu‐SSZ‐13@SiO2 Catalysts for Diesel Exhaust Treatment

Author:

Wei Yingzhen1ORCID,Wang Shuang2ORCID,Chen Mengyang3,Han Jinfeng1,Yang Guoju1,Wang Qifei1,Di Jiancheng1,Li Hongli1,Wu Wenzheng4,Yu Jihong15ORCID

Affiliation:

1. State Key Laboratory of Inorganic Synthesis and Preparative Chemistry College of Chemistry Jilin University Changchun 130012 China

2. Henan Province Function‐Oriented Porous Materials Key Laboratory College of Chemistry and Chemical Engineering Luoyang Normal University Luoyang 471934 China

3. School of Pharmaceutical and Chemical Engineering Taizhou University Taizhou 317000 China

4. School of Mechanical and Aerospace Engineering Jilin University Changchun 130025 China

5. International Center of Future Science Jilin University Changchun 130012 China

Abstract

AbstractCore–shell catalysts with functional shells can increase the activity and stability of the catalysts in selective catalytic reduction of NOx with ammoniax. However, the conventional approaches based on multistep fabrication for core–shell structures encounter persistent restrictions regarding strict synthesis conditions and limited design flexibility. Herein, a facile coaxial 3D printing strategy is for the first time developed to construct zeolite‐based core–shell monolithic catalysts with interconnected honeycomb structures, in which the hydrophilic noncompact silica serves as shell and Cu‐SSZ‐13 zeolite acts as core. Compared to a Cu‐SSZ‐13 monolith which suffers from the interfacial diffusion, the SiO2 shell layer can increase the accessibility of active sites over Cu‐SSZ‐13@SiO2, resulting in a 10–20% higher NO conversion at200−550 °C under 300 000 cm3 g−1 h−1. Meanwhile, a thicker SiO2 shell enhances the hydrothermal stability of the aged catalyst by inhibiting the dealumination and the formation of CuOx. Other representative monolithic catalysts with different topological zeolites as shell and diverse metal oxides as the core can be also realized by this coaxial 3D printing. This strategy allows multiple porous materials to be directly integrated, which allows for flexible design and fabrication of various core–shell monolithic catalysts with customized functionalities.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Higher Education Discipline Innovation Project

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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