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| Synthesis of Hierarchical ZSM-22 Zeolite and its Catalytic Performance for Hydrogenation Isomerization of n-Dodecane |
HAN Yang1,2, LI Mengchen3,4, YU Hongyue3, QIAO Liang3, SHEN Yuge3, GAO Shanbin3, JIAO Yilai2( ), CHI Kebin3( ) |
1.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China 2.Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China 3.Petrochemical Research Institute, PetroChina Company Limited, Beijing 102206, China 4.Department of Chemical Engineering, Tsinghua University, Beijing 100084, China |
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Cite this article:
HAN Yang, LI Mengchen, YU Hongyue, QIAO Liang, SHEN Yuge, GAO Shanbin, JIAO Yilai, CHI Kebin. Synthesis of Hierarchical ZSM-22 Zeolite and its Catalytic Performance for Hydrogenation Isomerization of n-Dodecane. Chinese Journal of Materials Research, 2026, 40(1): 1-12.
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Abstract The zeolite ZSM-22 with different grain length and pore structure was synthesized by hydrothermal synthesis with TDPA as mesoporous template agent. The synthesized material was characterized using XRD, XRF, SEM, TEM, NH3-TPD, N2 adsorption/desorption, solid-state NMR, and Py-IR. The results indicated that the incorporation of TDPA is beneficial for the formation of the mesoporous structure and the optimization of the acidity distribution for the prepared ZSM-22 zeolite. Then, a novel bifunctional noble metal catalyst was prepared with the acquired hierarchical ZSM-22 zeolite as support, meanwhile the performance of catalyst in the hydrogenation isomerization of n-dodecane was evaluated. The results revealed that with a molar ratio of nTDPA/SiO2 of 0.0170, the synthesized ZSM-22 zeolite presented proper pore structure and acidic performance, with an average crystal grain length lowered to 200 nm and an optimal distribution of acid strength and acid sites. For the n-dodecane conversion rate of 83%, the isomer selectivity increased to 68%, representing a 10-percentage-point improvement compared to the conventional blank ZSM-22 catalyst (58%). This study provides a new approach for developing highly efficient hydroisomerization catalyst through the in-situ synthesis of ZSM-22 zeolites with mesoporous structures.
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Received: 04 March 2025
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| Fund: National Key Research and Development Program of China(2023YFB3810600);National Natural Science Foundation of China(22378407) |
Corresponding Authors:
JIAO Yilai, Tel: (024)23971936, E-mail: yljiao@imr.ac.cn; CHI Kebin, Tel: (010)80165536, E-mail: ckb459@petrochina.com.cn
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