[1] G. Yuan, H. Cong, X. Li, Research progress in conversion to light aromatics and separation of heavy aromatics, Chem. Ind. Eng. 39(2022)60-72. [2] L.R. Pan, R.S. Li, H.X. Li, Study on disproportionation catalyst for preparing mdiethylbenzene from ethylbenzene, Spec. Petrochem. 9(3)(1992)42-46. [3] M. Osman, L. Atanda, M.M. Hossain, S. Al-Khattaf, Kinetics modeling of disproportionation and ethylation of ethylbenzene over HZSM-5:Effects of SiO2/Al2O3 ratio, Chem. Eng. J. 222(2013)498-511. [4] W.W. Kaeding, C. Chu, L.B. Young, B. Weinstein, S.A. Butter, Selective alkylation of toluene with methanol to produce para-xylene, J. Catal. 67(1)(1981)159-174. [5] D.Z. Yi, X.A. Meng, X. Xu, N.W. Liu, L. Shi, Catalytic performance of modified ZSM-5 designed with selectively passivated external surface acidity by phosphorus, Ind. Eng. Chem. Res. 58(24)(2019)10154-10163. [6] M. Osman, M.M. Hossain, S. Al-Khattaf, Kinetics study of ethylbenzene alkylation with ethanol over medium and large pore zeolites, Ind. Eng. Chem. Res. 52(38)(2013)13613-13621. [7] D.L. Yuan, Y. Sang, A.H. Xing, C.F. Wang, P. Miao, Q. Sun, Tuning of magnesium distribution in ZSM-5via different impregnation methods and its effect on methanol to propene reaction, Ind. Eng. Chem. Res. 58(13)(2019)5112-5120. [8] Y.Y. Chuang, M.F. Ou, G. Ho, K.J. Du, S.B. Liu, T.C. Tsai, Selective monoalkylbenzene disproportionation over silylated MFI zeolite, Catal. Today 388-389(2022)134-140. [9] Z.R. Zhu, Q.L. Chen, Z.K. Xie, W.M. Yang, D.J. Kong, C. Li, Shape-selective disproportionation of ethylbenzene to para-diethylbenzene over ZSM-5 modified by chemical liquid deposition and MgO, J. Mol. Catal. 248(1-2)(2006)152-158. [10] J.L. Li, M.K. Gao, W.F. Yan, J.H. Yu, Regulation of the Si/Al ratios and Al distributions of zeolites and their impact on properties, Chem. Sci. 14(8)(2022)1935-1959. [11] S. Inagaki, S. Shinoda, Y. Kaneko, K. Takechi, R. Komatsu, Y. Tsuboi, H. Yamazaki, J.N. Kondo, Y. Kubota, Facile fabrication of ZSM-5 zeolite catalyst with high durability to coke formation during catalytic cracking of paraffins, ACS Catal. 3(1)(2013)74-78. [12] X.X. Zhang, S.M. Xu, J. Hao, X.J. Xie, F.Q. Chen, D.G. Cheng, Effect of particle size of single-crystalline hierarchical ZSM-5 on its surface mass transfer in nheptane catalytic cracking, Chin. J. Chem. Eng. 63(2023)148-157. [13] M. Qian, H.W. Lei, Y.F. Zhao, E. Villota, E.G. Huo, C.X. Wang, X.S. Zhang, Ligninmediated preparation of hierarchical ZSM-5 catalysts and their effects in the catalytic co-pyrolysis of softwood biomass and low-density polyethylene mixtures, ACS Sustain. Chem. Eng. 9(37)(2021)12602-12613. [14] Y.L. Wang, X.C. Zhang, G.G. Zhan, M.M. Wang, W.Q. Li, J.P. Cao, Comparing the effects of hollow structure and mesoporous structure of ZSM-5 zeolites on catalytic performances in methanol aromatization, Mol. Catal. 540(2023)113044. [15] H.B. Chen, Y.Q. Wang, F.J. Meng, H.Y. Li, S.G. Wang, C. Sun, S.H. Wang, X. Wang, Conversion of methanol to propylene over nano-sized ZSM-5 zeolite aggregates synthesized by a modified seed-induced method with CTAB, RSC Adv. 6(80)(2016)76642-76651. [16] W.L. Jin, B.J. Wang, P.F. Tuo, C. Li, L. Li, H.J. Zhao, X.H. Gao, B.J. Shen, Selective desilication, mesopores formation, and MTO reaction enhancement via citric acid treatment of zeolite SAPO-34, Ind. Eng. Chem. Res. 57(12)(2018)4231-4236. [17] X. Zhang, D. Cheng, F. Chen, X. Zhan, The role of external acidity of hierarchical ZSM-5 zeolites in n-heptane catalytic cracking, ChemCatChem 10(2018)2655-2663. [18] I.A. Bakare, O. Muraza, M. Yoshioka, Z.H. Yamani, T. Yokoi, Conversion of methanol to olefins over Al-rich ZSM-5 modified with alkaline earth metal oxides, Catal. Sci. Technol. 6(21)(2016)7852-7859. [19] J.A. Zhou, Y.D. Wang, W. Zou, C.M. Wang, L.Y. Li, Z.C. Liu, A.M. Zheng, D.J. Kong, W.M. Yang, Z.K. Xie, Mass transfer advantage of hierarchical zeolites promotes methanol converting into para-methyl group in toluene methylation, Ind. Eng. Chem. Res. 56(33)(2017)9310-9321. [20] Y.G. Li, W.H. Xie, S. Yong, The acidity and catalytic behavior of Mg-ZSM-5 prepared via a solid-state reaction, Appl. Catal. A 150(2)(1997)231-242. [21] Z.X. Li, Y.K. Shi, D. Liu, S.J. Song, L. Zhao, Y. Guo, L.D. Chen, X.S. Wang, X.W. Guo, W.G. Cheng, Synthesis of Ni (ii)-phosphotungstic acid/nanocrystalline HZSM-5 catalyst for ultra clean gasoline in a single-stage reactor, New J. Chem. 45(31)(2021)14070-14081. [22] S.Y. Wang, H. Tong, H.N. Li, X. Shi, D. Liu, J.H. Li, K.X. Guo, L. Zhao, S.J. Song, L.D. Chen, W.G. Cheng, X.S. Wang, Synthesis of a phosphomolybdic acid/nanocrystalline titanium silicalite-1 catalyst in the presence of hydrogen peroxide for effective adsorption-oxidative desulfurization, New J. Chem. 46(5)(2022)2559-2568. [23] S.T. Song, T.S. Li, Y.N. Ju, Y. Li, Z.W. Lv, P. Zheng, A.J. Duan, P. Wu, X.L. Wang, Lanthanum/gallium-modified Zn/ZSM-5 zeolite for efficient isomerization/aromatization of FCC light gasoline, Ind. Eng. Chem. Res. 61(27)(2022)9667-9677. [24] L.G. Tonutti, H.P. Decolatti, C.A. Querini, B.O. Dalla Costa, Hierarchical H-ZSM-5 zeolite and sulfonic SBA-15:The properties of acidic H and behavior in acetylation and alkylation reactions, Microporous Mesoporous Mater. 305(2020)110284. [25] X. Hou, Y. Qiu, Y.J. Tian, Z.H. Diao, X.W. Zhang, G.Z. Liu, Reaction pathways of n-pentane cracking on the fresh and regenerated Sr, Zr and La-loaded ZSM-5 zeolites, Chem. Eng. J. 349(2018)297-308. [26] J. Goetze, B.M. Weckhuysen, Spatiotemporal coke formation over zeolite ZSM-5 during the methanol-to-olefins process as studied with operando UV-vis spectroscopy:A comparison between H-ZSM-5 and Mg-ZSM-5, Catal. Sci. Technol. 8(6)(2018)1632-1644. [27] J.E. Wang, B.Y. Zhao, Y.C. Xie, Correlations between the dispersion state of MgO and catalytic behavior of MgO/HZSM-5, Acta Phys. Chim. Sin. 17(11)(2001)966-971. [28] S.M. Al-Jubouri, Synthesis of hierarchically porous ZSM-5 zeolite by selfassembly induced by aging in the absence of seeding-assistance, Microporous Mesoporous Mater. 303(2020)110296. [29] Z. Li, Z. Liu, H. Wang, Y. Yu, X. Yan, S. Ying, L. Wang, Catalytic performance of acid-treated ZSM-5 molecular sieves for dehydration of isopropanol, Mod. Chem. Res. 24(2022)64-66.(in Chinese) [30] X.M. Zheng, Z. Wu, J.E. Yang, S. Rehman, R.R. Cao, P.Y. Zhang, Metaleorganic gel derived N-doped granular carbon:Remarkable toluene uptake and rapid regeneration, ACS Appl. Mater. Interfaces 13(15)(2021)17543-17553. [31] M. Ghazimoradi, N. Safari, S. Soltanali, H. Ghassabzadeh, Effect of simultaneous dealumination and metal incorporation of zeolite ZSM-5 on the catalytic performance in HTO process, Microporous Mesoporous Mater. 351(2023)112486. [32] T.L. Wang, Z.K. Xu, Y.Y. Yue, T.H. Wang, M.G. Lin, H.B. Zhu, Bimetallic PtSn nanoparticles confined in hierarchical ZSM-5 for propane dehydrogenation, Chin. J. Chem. Eng. 41(2022)384-391. [33] R.S. Bai, Y. Song, Y. Li, J.H. Yu, Creating hierarchical pores in zeolite catalysts, Trends Chem. 1(6)(2019)601-611. [34] Q.F. Che, W. Yi, Y.E. Liu, X.H. Wang, H.P. Yang, H.P. Chen, Effect of mesopores in ZSM-5 on the catalytic conversion of acetic acid, furfural, and guaiacol, Energy Fuels 35(7)(2021)6022-6029. [35] Y.Z. Jin, L.K. Zong, X.Y. Wang, H.J. Wei, Catalytic enhancement of cyclohexene hydration by Ga-doped ZSM-5 zeolites, ACS Omega 7(30)(2022)26289-26297. [36] J.X. Wu, C.X. Wang, X.L. Meng, H.C. Liu, R.Z. Chu, G.G. Wu, W.S. Li, X.F. Jiang, D. G. Yang, Enhancement of catalytic and anti-carbon deposition performance of SAPO-34/ZSM-5/quartz films in MTA reaction by Si/Al ratio regulation, Chin. J. Chem. Eng. 56(2023)314-324. [37] Q. Liu, M.A. Zhang, L.B. Sun, H.J. Su, X.H. Zou, C.X. Qi, The performance of catalytic conversion of ZSM-5 comodified with gold and lanthanum for increasing propylene production, Ind. Eng. Chem. Res. 58(32)(2019)14695-14704. [38] X.X. Wang, F. Guo, Y.E. Yu, Z.M. Liu, Y.C. Wang, H.Y. Sun, X.J. Liu, Y.B. Xue, X.X. Wei, S.Q. Guo, Study on the synthesized rosin glyceride over LaZSM-5 zeolite catalyst synthesized by the in situ method, ACS Omega 5(49)(2020)31543-31550. [39] Z.F. He, Z.Y. Dai, J. Long, Formation and structural characteristics of acidic centers of silica-alumina catalyst, Acta Petrol. Sin. Petrol. Process. Sect. 27(1)(2011)11-19. [40] L.D. Chen, X.S. Wang, X.W. Guo, H.C. Guo, H.O. Liu, Y.Y. Chen, In situ nanocrystalline HZSM-5 zeolites encaged heteropoly acid H3PMo12O40 and Ni catalyst for hydroconversion of n-octane, Chem. Eng. Sci. 62(16)(2007)4469-4478. [41] Z.M. Chen, W. Chen, L. Zhang, W.Q. Fu, G.R. Cai, A.M. Zheng, T.D. Tang, Acidic hierarchical porous ZSM-5 assembled palladium catalyst:A green substitute to transform primary amides to nitriles, Appl. Catal. B 302(2022)120835. [42] Z.H. Shen, C.W. Ma, D.R. Wang, J.L. He, H.M. Sun, Z.R. Zhu, W.M. Yang, Shapeselective alkylation of benzene with ethylene over a core-shell ZSM-5@MCM-41 composite material, Chin. J. Chem. Eng. 37(2021)64-71. [43] Y.W. Zhao, B.X. Shen, H. Sun, Chemical liquid deposition modified ZSM-5 zeolite for adsorption removal of dimethyl disulfide, Ind. Eng. Chem. Res. 55(22)(2016)6475-6480. [44] J. Geserick, T. Froschl, N. Hüsing, G. Kucerova, M. Makosch, T. Diemant, S. Eckle, R.J. Behm, Molecular approaches towards mixed metal oxides and their behaviour in mixed oxide support Au catalysts for CO oxidation, Dalton Trans. 40(13)(2011)3269-3286. [45] Y. Kubo, Y. Sonohara, S. Uemura, Y. Saito, High-energy electron-irradiated fluorinated ethylene polypropylene copolymer coatings on Al substrates for enhanced metal adhesion and protection, ACS Appl. Nano Mater. 5(5)(2022)6757-6769. [46] M.K. Liu, Y.N. Zhao, H.W. Zhao, X.H. Li, Y.H. Ma, X. Yong, H. Chen, Y.D. Li, The promotion effect of nickel and lanthanum on Cu-ZSM-5 catalyst in NO direct decomposition, Catal. Today 327(2019)203-209. [47] J.X. Zhang, A.J. Zhou, K. Gawande, G.X. Li, S.J. Shang, C.Y. Dai, W. Fan, Y. Han, C. S. Song, L.M. Ren, A.F. Zhang, X.W. Guo, b-Axis-oriented ZSM-5 nanosheets for efficient alkylation of benzene with methanol:Synergy of acid sites and diffusion, ACS Catal. 13(6)(2023)3794-3805. [48] Y. Li, C.S. Zhang, Y.G. Liu, X.X. Hou, R.Q. Zhang, X.Y. Tang, Coke deposition on Ni/HZSM-5 in bio-oil hydrodeoxygenation processing, Energy Fuels 29(3)(2015)1722-1728. [49] J. Cejka, N. ſilková, B. Wichterlova, G. Eder-Mirth, J.A. Lercher, Decisive role of transport rate of products for zeolite para-selectivity:Effect of coke deposition and external surface silylation on activity and selectivity of HZSM-5 in alkylation of toluene, Zeolites 17(3)(1996)265-271. [50] J.W. Zhong, J.F. Han, Y.X. Wei, S.T. Xu, Y.L. He, Y.J. Zheng, M. Ye, X.W. Guo, C.S. Song, Z.M. Liu, Increasing the selectivity to ethylene in the MTO reaction by enhancing diffusion limitation in the shell layer of SAPO-34 catalyst, Chem. Commun. 54(25)(2018)3146-3149. [51] Y. Sugi, Y. Kubota, K. Komura, N. Sugiyama, M. Hayashi, J.H. Kim, G. Seo, Shape-selective alkylation and related reactions of mononuclear aromatic hydrocarbons over H-ZSM-5 zeolites modified with lanthanum and cerium oxides, Appl. Catal. A 299(2006)157-166. [52] Y.F. Xu, H.J. Tang, L.M. Liu, M. Hua, K.X. Chen, Y.F. Duan, Hierarchical Fe/ZSM-5 zeolites for efficient Hg0 removal from coal-fired flue gas, Chem. Eng. J. 450(2022)138180. [53] V. Margarit, M. Osman, S. Al-Khattaf, C. Martínez, M. Boronat, A. Corma, Control of the reaction mechanism of alkylaromatics transalkylation by means of molecular confinement effects associated to zeolite channel architecture, ACS Catal. 9(2019)5935-5946. [54] A.M. Vos, X. Rozanska, R.A. Schoonheydt, R.A. van Santen, F. Hutschka, J. Hafner, A theoretical study of the alkylation reaction of toluene with methanol catalyzed by acidic mordenite, J. Am. Chem. Soc. 123(12)(2001)2799-2809. [55] G.Q. Hou, T.J. Fu, X. Li, Q. Ma, Z. Li, Creation of silanol nests on HZSM-5 catalyst to boost the alkylation of toluene with methanol for PX synthesis, Appl. Catal. A 642(2022)118713. [56] C.F. Wang, Q. Zhang, Y.F. Zhu, D.K. Zhang, J.Y. Chen, F.K. Chiang, p-Xylene selectivity enhancement in methanol toluene alkylation by separation of catalysis function and shape-selective function, Mol. Catal. 433(2017)242-249. [57] H. Vinek, M. Derewinski, G. Mirth, J.A. Lercher, Alkylation of toluene with methanol over alkali exchanged ZSM-5, Appl. Catal. 68(1)(1991)277-284. [58] J. Huang, Y.J. Jiang, V.R. Reddy Marthala, M. Hunger, Insight into the mechanisms of the ethylbenzene disproportionation:Transition state shape selectivity on zeolites, J. Am. Chem. Soc. 130(38)(2008)12642-12644. [59] A.P. Bolton, M.A. Lanewala, P.E. Pickert, Isomerization of the diethylbenzenes using zeolite catalysts, J. Org. Chem. 33(4)(1968)1513-1517. [60] D.L. Wang, J.Q. Zhang, P. Dong, G.X. Li, X.Y. Fan, Y. Yang, Novel short process for p-xylene production based on the selectivity intensification of toluene methylation with methanol, ACS Omega 7(1)(2021)1211-1222. [61] I. Takahara, M. Saito, M. Inaba, K. Murata, Dehydration of ethanol into ethylene over solid acid catalysts, Catal. Lett. 105(3)(2005)249-252. [62] S.M. Waziri, S. Al-Khattaf, Kinetics of ethylbenzene ethylation with ethanol over a ZSM-5-based catalyst in a riser simulator, Ind. Eng. Chem. Res. 48(18)(2009)8341-8348. [63] Q. Shi, J.C. Gonçalves, A.F.P. Ferreira, M.G. Plaza, A.E. Rodrigues, Xylene isomerization side reactions over Beta zeolite:Disproportionation and transalkylation of C8 aromatics and toluene, Appl. Catal. A 562(2018)198-205. [64] M.S. Edake, S.D. Samant, Solvent free selective isomerization of p-diethylbenzene to m-diethylbenzene using modified Hb zeolites, Adv. Mater. Lett. 5(10)(2014)550-556. [65] L.L. Zhang, T.J. Fu, K. Ren, Y.T. Han, R. Wang, G.W. Zhan, Z. Li, Finely regulating methanol concentration to control the alkylation depth in methanol aromatization for optimizing product distribution, Appl. Catal. B 321(2023)122047. [66] J.L. Hodala, Y.S. Bhat, A.B. Halgeri, G.V. Shanbhag, Shape-selective synthesis of para-diethylbenzene over pore-engineered ZSM-5:A kinetic study, Chem. Eng. Sci. 138(2015)396-402. |