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Mass-Transfer Enhancement of Heavy Oil Molecules in Hierarchical FCC Catalysts: an in situ Visualization Study via Fluorescence Imaging

Abstract

   This study employed advanced in situ visualization techniques to investigate the mass-transfer enhancement mechanisms of heavy oil components in fluid catalytic cracking (FCC) catalysts. Three FCC catalysts with different matrix compositions were selected: CAT-1 (kaolin), CAT-2 (kaolin/APM-7), and CAT-3 (kaolin/APM-9). Their pore structures were systematically characterized using SEM and N2 adsorption-desorption. In situ visualization of the diffusion of Rhodamine B-tagged heavy oil components (probe size: 2–5 nm) within the catalyst pores was achieved by laser confocal fluorescence microscopy at a resolution of 200 nm. The results demonstrated that CAT-3, modified with APM-9, exhibited an optimal mesoporous structure (with 35 % of pores in the 3–5 nm range) and achieved an effective diffusion coefficient of 1.84×10–13 m2/s, which is 7.3 times higher than that of the conventional kaolin-based CAT-1. Analysis using the Yoon–Nelson model further confirmed a 68 % reduction in the adsorption rate constant for CAT-3, revealing the synergistic enhancement effect between hierarchical pore channels and acid sites. This study established a quantitative structure-performance relationship between pore architecture and mass transfer in FCC catalysts, facilitated by the development of an in situ fluorescence visualization technique for probing diffusion within porous materials. This study not only provides a quantitative “pore structure–mass transfer” relationship model for the rational design of FCC catalysts, but also offers a novel characterization method with high spatiotemporal resolution for investigating the mass-transfer mechanism of porous materials.

About the Authors

M. Zhang
Liaoning Petrochemical University
China

Meihua Zhang

Liaoning Province; Fushun



H. Wang
Liaoning Petrochemical University,
China

Huan Wang

Liaoning Province; Fushun



L. Zhang
China National Petroleum Corporation
China

Li Zhang

Lanzhou Research Center of Lanzhou Institute of Petroleum and Petrochemical Technology

Lanzhou



Q. Tang
Liaoning Petrochemical University
China

Qin Tang

Liaoning Province; Fushun



L. Yu
Liaoning Petrochemical University
China

Lei Yu

Liaoning Province; Fushun



C. Chen
Liaoning Petrochemical University
China

Cailin Chen

Liaoning Province; Fushun



H. Guan
Liaoning Petrochemical University
China

Huimin Guan

Liaoning Province; Fushun



Yu. Qin
Liaoning Petrochemical University
China

Yucai Qin

Liaoning Province; Fushun



L. Song
Liaoning Petrochemical University
China

Lijuan Song

Liaoning Province; Fushun



References

1. P. Bai, U. J. Etim, Z. F. Yan, S. Mintova, Z. D. Zhang, Z. Y. Zhong, X. H. Gao, Catal. Rev. – Sci. Eng., 61, 333–405 (2019).

2. A. R. Khande, P. K. Dasila, S. Majumder, P. Maity, C. Thota, Catalysis for Clean Energy and Environmental Sustainability, Springer Into Publ., 65–108 (2021).

3. Q. Shi, S. Zhao, Y. Zhou, J. Gao, C. Xu, Rev. Chem. Eng., 36, 1–19 (2020).

4. L. Chen, X. Li, J. C. Rooke, Y. H. Zhang, X. Y. Yang, Y. Tang, F. S. Xiao, B. L. Su, J. Mater. Chem., 22, 17381–17403 (2012).

5. J. M. M. Ferreira, E. F. Sousa-Aguiar, D. A. G. Aranda, Catal., 13, 784 (2023).

6. Z. Gholami, F. Gholami, Z. Tiler, M. Tomas, M. J. E. Vakili, Energies, 14, 1089 (2021).

7. C. Jiao, Q. Jiao, W. Zhang, Z. Ji, J. Zheng, W. Dai, Y. Wang, M. Pan, R. Li, J. Mater. Sci., 59 (2024).

8. X. Wang, Y. You, X. Han, X. Jiang, J. Therm. Anal. Calorim., 147, 8535–8549 (2022).

9. K. Na, C. Jo, J. Kim, K. Cho, J. Jung, Y. Seo, R. J. Messinger, B. F. Chmelka, R. Ryoo, Science, 333, 328–332 (2011).

10. L. Chen, M. Sun, Z. Wang, W. Yang, Z. Xie, B. Su, Chem. Rev., 120, 11194–11294 (2020).

11. Y. Qin, X. Gao, H. Zhang, S. Zhang, L. Zheng, Q. Li, Z. Mo, L. Duan, X. Zhang, L. Song, Catal. Today, 245, 147–154 (2015).

12. H. Mao, J. Tang, J. Xu, Y. Peng, J. Chen, B. Wu, Y. Jiang, K. Hou, S. Chen, J. Wang, Matter, 3, 2093–2107 (2020).

13. E. M. Forman, M. A. Trujillo, K. J. Ziegler, S. A. Bradley, H. Wang, S. Prabhakar, S. Vasenkov, Microporous Mesoporous Mater., 229, 117–123 (2016).

14. E. Stavitski, M. H. F. Kox, B. M. Weckhuysen, Studies Surface Sci. and Catalysis, 174, 21–32 (2008).

15. C. Liu, L. Meng, X. Huan, H. Li, J. Luo, R. Xie, W. Zhang, X. Jia, Q. Cai, X. Yang, J. Mater. Sci., 56, 16399–16421 (2021).

16. N. Kumar, S. Kalirai, A. J. Wain, B. M. Weckhuysen, Chem. Cat. Chem., 11, 417–423 (2019).

17. I. L. C. Buurmans, J. Ruiz-Martínez, W. V. Knowles, V. D. B. David, J. A. Bergwerff, E. T. C.Vogt, B. M. Weckhuysen, Nat. Chem., 3, 862–867 (2011).

18. Y. M. Harmaza, A. V. Tamashevski, E. I. Slobozhanina, J. Appl. Spectrosc., 87, 1094–1099 (2021).

19. L. M. Hirvonen, K. Suhling, Meas. Sci. Technol., 28, 012003 (2017).

20. F. Malanga, G. Fratta, G. Acconcia, I. Rech, IEEE Trans. Biomed. Circuits Syst., 19, 442–453 (2025).

21. H. Wang, X. Xiong, Y. Deng, X. Sun, H. Guan, Q. Li, L. Song, J. Petrochem. Univ., 37, 58–63 (2024).

22. M. E. Z. Velthoen, A. L. Paioni, I. E. Teune, M. Baldus, B. M. Weckhuysen, Chem. Eur. J., 26, 11995–12009 (2020).

23. X. Xu , C. Li, H. Shan, Acta Phys. – Chim. Sin., 27, 1947–1955 (2011).

24. C. Yuan, Z. Li, L. Zhou, G. Ju, Mater., 15, 2169 (2022).

25. L. Zhang, Q. Hu, Y. Qin, Microporous Mesoporous Mater., 359, 112627 (2023).

26. E. Amini, K. Ahmadi, A. Rashidi, A. A. Youzbashi, M. Rezaei, S. Mesgar, Sci. Rep., 15, 1844 (2025).

27. X. Wang, C. Zhang, W. Liu, P. Zhang, Polymers, 10, 944 (2018).

28. R. Wang, H. Wang , X. Xiong , H. Guan , Y. Zheng, C. Chen, Y. Qin, L. Song, CIESC J., 75, 3198–3209 (2024).

29. X. Xiong , X. Gao, Q. Hu, H. Zhao, Fine Petrochem., 36, 24–27 (2019).

30. D. Fila, D. Kołodyńska. Materials, 16, 1058 (2023).

31. K. H. Chu, M. A. Hashim, Environ. Sci. Poll. Res., 31, 21136–21143 (2024).

32. Y. Li, F. Gong, W. Yang, B. Liu, Environ. Sci. Poll. Res., 30, 121007–121013 (2023).

33. J. Krger, D. M. Ruthven, New J. Chem., 40, 4027–4048 (2016).

34. Y. Yin, B. Jiang, G. Xu, Y. Liu, Z. Wang, Y. Feng, X. Sun, J. Appl. Spectrosc., 91, 945–952 (2024).


Review

For citations:


Zhang M., Wang H., Zhang L., Tang Q., Yu L., Chen C., Guan H., Qin Yu., Song L. Mass-Transfer Enhancement of Heavy Oil Molecules in Hierarchical FCC Catalysts: an in situ Visualization Study via Fluorescence Imaging. Zhurnal Prikladnoii Spektroskopii. 2026;93(3):440 (1-11).

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