Boosting molecular diffusion following the generalized Murray's Law by constructing hierarchical zeolites for maximized catalytic activity

Author:

Sun Ming-Hui12,Gao Shu-Shu34,Hu Zhi-Yi15,Barakat Tarek2,Liu Zhan1,Yu Shen1,Lyu Jia-Min1,Li Yu1,Xu Shu-Tao4,Chen Li-Hua1,Su Bao-Lian12ORCID

Affiliation:

1. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology , Wuhan 430070 , China

2. Laboratory of Inorganic Materials Chemistry (CMI), University of Namur , Namur B-5000, Belgium

3. Division of Analysis, Sinopec Beijing Research Institute of Chemical Industry , Beijing 100013 , China

4. National Engineering Laboratory for Methanol to Olefins, Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences , Dalian 116023 , China

5. Nanostructure Research Centre, Wuhan University of Technology , Wuhan 430070 , China

Abstract

ABSTRACT Diffusion is an extremely critical step in zeolite catalysis that determines the catalytic performance, in particular for the conversion of bulky molecules. Introducing interconnected mesopores and macropores into a single microporous zeolite with the rationalized pore size at each level is an effective strategy to suppress the diffusion limitations, but remains highly challenging due to the lack of rational design principles. Herein, we demonstrate the first example of boosting molecular diffusion by constructing hierarchical Murray zeolites with a highly ordered and fully interconnected macro–meso–microporous structure on the basis of the generalized Murray's Law. Such a hierarchical Murray zeolite with a refined quantitative relationship between the pore size at each length scale exhibited 9 and 5 times higher effective diffusion rates, leading to 2.5 and 1.5 times higher catalytic performance in the bulky 1,3,5-triisopropylbenzene cracking reaction than those of microporous ZSM-5 and ZSM-5 nanocrystals, respectively. The concept of hierarchical Murray zeolites with optimized structural features and their design principles could be applied to other catalytic reactions for maximized performance.

Funder

National Natural Science Foundation of China

Program of Introducing Talents of Discipline to Universities

Ministry of Science and Technology

Ministry of Education of China

International Science and Technology Cooperation Programme

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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