REFERENCES
1. Wang X, Ma Y, Wu Q, Wen Y, Xiao FS. Zeolite nanosheets for catalysis. Chem Soc Rev 2022;51:2431-43.
2. Chen LH, Sun MH, Wang Z, Yang W, Xie Z, Su BL. Hierarchically structured zeolites: from design to application. Chem Rev 2020;120:11194-294.
3. Choi M, Na K, Kim J, Sakamoto Y, Terasaki O, Ryoo R. Stable single-unit-cell nanosheets of zeolite MFI as active and long-lived catalysts. Nature 2009;461:246-9.
4. Na K, Choi M, Park W, Sakamoto Y, Terasaki O, Ryoo R. Pillared MFI zeolite nanosheets of a single-unit-cell thickness. J Am Chem Soc 2010;132:4169-77.
5. Xu D, Ma Y, Jing Z, et al. π-π interaction of aromatic groups in amphiphilic molecules directing for single-crystalline mesostructured zeolite nanosheets. Nat Commun 2014;5:4262.
6. Shen X, Mao W, Ma Y, et al. A hierarchical MFI zeolite with a two-dimensional square mesostructure. Angew Chem Int Ed Engl 2018;57:724-8.
7. Lu K, Huang J, Ren L, et al. High ethylene selectivity in Methanol-to-Olefin (MTO) reaction over MOR-zeolite nanosheets. Angew Chem Int Ed Engl 2020;59:6258-62.
8. Mallette AJ, Seo S, Rimer JD. Synthesis strategies and design principles for nanosized and hierarchical zeolites. Nat Synth 2022;1:521-34.
9. Shamzhy M, Gil B, Opanasenko M, Roth WJ, Čejka J. MWW and MFI frameworks as model layered zeolites: structures, transformations, properties, and activity. ACS Catal 2021;11:2366-96.
10. Shan Z, Wang H, Meng X, et al. Designed synthesis of TS-1 crystals with controllable b-oriented length. Chem Commun 2011;47:1048-50.
11. Yang J, Gong K, Miao D, et al. Enhanced aromatic selectivity by the sheet-like ZSM-5 in syngas conversion. J Energy Chem 2019;35:44-8.
12. Ali B, Lan X, Arslan MT, Gilani SZA, Wang H, Wang T. Controlling the selectivity and deactivation of H-ZSM-5 by tuning b-axis channel length for glycerol dehydration to acrolein. J Ind Eng Chem 2020;88:127-36.
13. Duan J, Chen W, Wang C, et al. Coking-resistant polyethylene upcycling modulated by zeolite micropore diffusion. J Am Chem Soc 2022;144:14269-77.
14. Lv X, Yang M, Song S, et al. Boosting propane dehydrogenation by the regioselective distribution of subnanometric CoO clusters in MFI zeolite nanosheets. ACS Appl Mater Interfaces 2023;15:14250-60.
15. Chen X, Yan W, Cao X, Yu J, Xu R. Fabrication of silicalite-1 crystals with tunable aspect ratios by microwave-assisted solvothermal synthesis. Microporous Mesoporous Mater 2009;119:217-22.
16. Lupulescu AI, Rimer JD. Tailoring silicalite-1 crystal morphology with molecular modifiers. Angew Chem Int Ed Engl 2012;51:3345-9.
17. Song X, Yang X, Zhang T, et al. Controlling the morphology and titanium coordination states of TS-1 zeolites by crystal growth modifier. Inorg Chem 2020;59:13201-10.
18. Zhu P, Wang J, Xia F, Zhang W, Liu H, Zhang X. Alcohol-assisted synthesis of sheet-like ZSM-5 zeolites with controllable aspect ratios. Eur J Inorg Chem 2023;26:e202200664.
19. Shang Z, Chen Y, Zhang L, Zhu X, Wang X, Shi C. Plate-like MFI crystal growth achieved by guanidine compounds. Inorg Chem Front 2022;9:2097-103.
20. Shang Z, Chen Y, Zhang L, Zhu X, Wang X, Shi C. Constructing single-crystalline hierarchical plate-like ZSM-5 zeolites with short b-axis length for catalyzing MTO reactions. Inorg Chem Front 2022;9:1456-66.
21. Zhang X, Liu D, Xu D, et al. Synthesis of self-pillared zeolite nanosheets by repetitive branching. Science 2012;336:1684-7.
22. Ma Y, Tang X, Hu J, et al. Design of a small organic template for synthesis of self-pillared pentasil zeolite nanosheets. J Am Chem Soc 2022;144:6270-7.
23. Jain R, Chawla A, Linares N, García Martínez J, Rimer JD. Spontaneous pillaring of pentasil zeolites. Adv Mater 2021;33:e2100897.
24. Liu Y, Ji T, Zhou T, Lu J, Li H, Liu Y. Preparation of MFI nanosheets with distinctive microstructures via facile alkaline etching. Ind Eng Chem Res 2021;60:16296-303.
25. Zhou T, Zhang D, Liu Y, et al. Construction of monodispersed single-crystalline hierarchical ZSM-5 nanosheets via anisotropic etching. J Energy Chem 2022;72:516-21.
26. Dai W, Kouvatas C, Tai W, et al. Platelike MFI crystals with controlled crystal faces aspect ratio. J Am Chem Soc 2021;143:1993-2004.
27. Dai W, Zhang L, Liu R, Wu G, Guan N, Li L. Plate-like ZSM-5 zeolites as robust catalysts for the cracking of hydrocarbons. ACS Appl Mater Interfaces 2022;14:11415-24.
28. Zhang L, Yang L, Liu R, et al. Design of plate-like H[Ga]MFI zeolite catalysts for high-performance methanol-to-propylene reaction. Microporous Mesoporous Mater 2022;333:111767.
29. Dai W, Ruaux V, Deng X, et al. Synthesis and catalytic application of nanorod-like FER-type zeolites. J Mater Chem A 2021;9:24922-31.
30. Wang Z, Zhang H, Ma Y, et al. Transfer printing platelike MFI crystals as seeds for the preparation of silicalite-1 membranes. Microporous Mesoporous Mater 2022;336:111895.
31. Hedlund J, Zhou M, Faisal A, et al. Controlling diffusion resistance, selectivity and deactivation of ZSM-5 catalysts by crystal thickness and defects. J Catal 2022;410:320-32.
32. Zhang J, Ren L, Zhou A, et al. Tailored synthesis of ZSM-5 nanosheets with controllable b-axis thickness and aspect ratio: strategy and growth mechanism. Chem Mater 2022;34:3217-26.
33. Zhang J, Zhou A, Gawande K, et al. b-Axis-oriented ZSM-5 nanosheets for efficient alkylation of benzene with methanol: synergy of acid sites and diffusion. ACS Catal 2023;13:3794-805.
34. Peng Y, Lu X, Wang Z, Yan Y. Fabrication of b-oriented MFI zeolite films under neutral conditions without the use of hydrogen fluoride. Angew Chem Int Ed Engl 2015;54:5709-12.
35. Kumar S, Wang Z, Penn RL, Tsapatsis M. A structural resolution cryo-TEM study of the early stages of MFI growth. J Am Chem Soc 2008;130:17284-6.
36. Lesthaeghe D, Vansteenkiste P, Verstraelen T, et al. MFI fingerprint: how pentasil-induced IR bands shift during zeolite nanogrowth. J Phys Chem C 2008;112:9186-91.
37. Hsu CY, Chiang AS, Selvin R, Thompson RW. Rapid synthesis of MFI zeolite nanocrystals. J Phys Chem B 2005;109:18804-14.
38. Shi D, Haw KG, Kouvatas C, et al. Expanding the synthesis field of high-silica zeolites. Angew Chem Int Ed Engl 2020;59:19576-81.
39. Qin Z, Lakiss L, Tosheva L, et al. Comparative study of nano-ZSM-5 catalysts synthesized in OH- and F- Media. Adv Funct Mater 2014;24:257-64.
40. Ma Q, Fu T, Ren K, Li H, Jia L, Li Z. Controllable orientation growth of ZSM-5 for methanol to hydrocarbon conversion: cooperative effects of seed induction and medium pH control. Inorg Chem 2022;61:13802-16.
41. Hikichi N, Iyoki K, Naraki Y, et al. Role of sodium cation during aging process in the synthesis of LEV-type zeolite. Microporous Mesoporous Mater 2019;284:82-9.
42. Luo D, Wang Q, Fan D, et al. Hydrothermal synthesis of siliceous beta zeolite by an inorganic cation-driven strategy and its crystallization mechanism. Microporous Mesoporous Mater 2022;329:111557.
43. Grand J, Talapaneni SN, Vicente A, et al. One-pot synthesis of silanol-free nanosized MFI zeolite. Nat Mater 2017;16:1010-5.
44. Sheng Z, Li H, Du K, et al. Observing a zeolite nucleus (subcrystal) with a uniform framework structure and its oriented attachment without single-molecule addition. Angew Chem Int Ed Engl 2021;60:13444-51.
45. Zecchina A, Bordiga S, Spoto G, et al. Silicalite characterization. 1. Structure, adsorptive capacity, and IR spectroscopy of the framework and hydroxyl modes. J Phys Chem 1992;96:4985-90.
46. Mintova S, Valtchev V, Vultcheva E, Veleva S. Crystallization kinetics of zeolite ZSM-5. Zeolites 1992;12:210-5.
47. Uzcátegui D, González G. Study of the kinetics of crystallization of zeolite MEL. Catalysis Today 2005;107-8:901-5.
48. Kadja GTM, Azhari NJ, Mukti RR, Khalil M. A mechanistic investigation of sustainable solvent-free, seed-directed synthesis of ZSM-5 zeolites in the absence of an organic structure-directing agent. ACS Omega 2021;6:925-33.