中文
Announcement
More
Progress in Chemistry 2010, Vol. 22 Issue (04): 754-759 Previous Articles   Next Articles

• Invited Article •

Conversion of Ethanol into Light Olefins over ZSM-5 Catalysts

Liu Yancong; Xu Yuebing; Lu Jiangyin**   

  1. ( Key Laboratory of Oil & Gas Fine Chemicals, Ministry of Education, Xinjiang University, Urumqi 830046, China )
  • Received: Revised: Online: Published:
  • Contact: Lu Jiangyin E-mail:ljy6410@yahoo.com.cn
PDF ( 2263 ) Cited
Export

EndNote

Ris

BibTeX

The conversion of ethanol to light olefins has been attracted more attentions since the bioethanol got much developed in recent years. This paper reviewed the advancement of HZSM-5 catalyst for the reaction. The HZSM-5 catalysts modified with metal ion or phosphorus improved the catalytic performance compared to the unmodified catalysts. The loaded components on HZSM-5 decreased the amount of B acid and changed the intensity, the activity of catalysts and selectivity of light olefins were remarkably enhanced by the modification, and the service life was also prolonged. The factors for the reaction and the possible reaction mechanism, were also discussed in the paper. It was pointed out that the production of olefins via ethanol is an alternative route for cracking naphtha.

Contents
1 Introduction
2 ZSM-5 catalysts for convention ethanol to light olefins
2.1 Metal modified catalysts
2.2 Phosphorus modified catalysts
2.3 Other catalysts
3 Factors for reaction of ethanol to light olefins
4 Reaction mechanisms of ethanol to light olefins
5 Outlook

CLC Number: 

[1 ] Kuo H L,Kuo C Y,Liu C H,et al. Catal. Lett. ,2007,113:7—12
[2 ] Rosenberger A,Kaul P,Aufhammer W. Appl. Energy,2001,68: 51—67
[3 ] Hansen A,Zhang Q,Lyne P. Bioresource Technol. ,2005,96:277—285
[4 ] Jamssk W,Douglas P L,Croiset E,et al. J. Power Sources,2009,187: 190—203
[5 ] Arteaga L E,Peralta L M,Kafarov V,et al. Chem. Eng. J. ,2008,136: 256—266
[6 ] Gucbilmez Y,Dogu T. Ind. Eng. Chem. Res. ,2006,45:3496—3502
[7 ] 李亚男( Li Y N) ,金照生( Jin Z S) ,杨为民( Yang W M) . 化工进展( Chemical Industry and Engineering Progress) ,2009,28: 67—72
[8 ] Gayubo A G,Castilla M,Olazar M,et al. Chem. Eng. Sci. ,2001,56: 5059—5071
[9 ] William R M,Robert W T,Chen C C,et al. J. Catal. ,1989,117: 19—32
[10] Cory B P,Ravindra D. Ind. Eng. Chem. Res. ,1997,36:4466—4475
[11] Juergen S. Chem. Eng. Technol. ,1994,17: 179—186
[12] Ermakov R V,Plakhotnik V A. Petro. Chem. ,2008,48: 1—5
[13] Johansson R,Hruby S L,Christensen C H. Catal. Lett. ,2009,127: 1—6
[14] Chang C D,Lang W H,Silvestri A J. US 4062905,1977
[15] Iwamoto M,Kosugi Y. J. Phys. Chem. C,2007,111: 13—15
[16] Inaba M,Murata K,Saito M,et al. Green Chem. ,2007,9:638—646
[17] Machado N R C F,Calsavara V,Astrath N G C,et al. Fuel,2005,84: 2064—2070
[18] Machado N R C F,Calsavara V,Astrath N G C,et al. Appl.Catal. ,2006,311: 193—198
[19] Calsavara V,Baesso M L,Machado N R C F. Fuel,2008,87:1628—1636
[20] Inaba M,Murata K,Saito M,et al. React. Kinet. Catal. Lett. ,2006,88: 135—142
[21] Inaba M, Murata K, Saito M, et al. Proceedings of 4th International Symposium on Environmentally Conscious Design and Inverse Manufacturing,Tokyo,2005
[22] Murata K,Inaba M,Takahara I. Journal of the Japan Petroleum Institute,2008,51: 234—239
[23] Song Z X,Takahashi A,Mimura N,Fujitani T. Catal. Lett. ,2009,131: 364—369
[24] Ingram C W,Lancashire R J. Catal. Lett. ,1995,31: 395—403
[25] Saha S K,Sivasanker S. Catal. Lett. ,1992,15: 413—418
[26] Johnson J A,Weiszmann J A,Hilder G K,et al. NPRA Annual Meeting,San Antonio,Texas,March 1984
[27] Barthos R,Széchenyi A,Solymosi F. J. Phys. Chem. B,2006,110: 21816—21825
[28] Le van Mao R,Levesque P,Dao L H,et al. Appl. Catal. ,1987,34: 163—179
[29] Le van Mao R. US 4873392,1989
[30] Jacobs J M,Jacabs P A,Uytterhoeven J B. US 4670620,1987
[31] Ramesh K,Hui L M,Han Y F,et al. Catal. Commun. ,2009,10: 567—571
[32] Zhang D S,Wang R J,Yang X X. Catal. Lett. ,2008,124:384—391
[33] Lercher J A,Rumplanayr G. Appl. Catal. ,1986,25: 215—222
[34] Talukdar A K,Bhattacharyya K G,Sivasanker S. Appl. Catal.A,1997,148: 357—371
[35] Schulz J,Bandermann F. Chem. Eng. Technol. ,1994,17:179—186
[36] Aguayo A T,Gayubo A G, Tarrío A M, et al. J. Chem.Technol. Biotechnol. ,2002,77: 211—216
[37] Cory B P,Ravindra D. Ind. Eng. Chem. Res. ,1997,36:4466—4475
[38] Le van Mao R,Nguyen T M,Yao J. Appl. Catal. ,1990,61:161—173
[39] Nguyen T M,Mao R L. Appl. Catal. ,1990,58: 119—129
[40] Le van Mao R,Nguyen T M. US 4 847 223,1989
[41] Le van Mao R,Nguyen T M. Appl. Catal. ,1989,48: 265—277
[42] Le van Mao R,Nguyen T M,Yao J. Appl. Catal. ,1990,61:161—173
[43] Le van Mao R,Dao L H. US4698452,1987
[44] Aguayo A T,Gayubo A G,Atutxa A,et al. Ind. Eng. Chem.Res. ,2003,42: 3914—3921
[45] Magnoux P,Cerqueira H S,Guisnet M. Appl. Catal. ,2002,235: 93—99
[46] Aguayo A T,Gayubo A G,Atutxa A,et al. Catal. Today,2005,107 /108: 410—416
[47] Takahara I,Saito M,Matsuhashi H,et al. Catal. Lett. ,2007,113: 82—85
[48] Takahara I,Saito M,Matsuhashi H,et al. Journal of the Japan Petroleum Instiute,2007,50: 227—228
[49] Takahara I,Saito M,Inaba M,et al. Catal. Lett. ,2005,105:249—252
[50] Bun S,Nishiyama S,Tsuruya S,et al. Appl. Catal. ,1990,59: 13—29
[51] Moser W R,Thompson R W,Chiang C C,et al. J. Catal. ,1989,177: 19—32
[52] Inoue K,Inaba M,Takahara I,et al. Catal. Lett. ,2010,doi:10. 1007 / s10562-010-0315-2
[53] Inaba M,Murata K,Saito M,et al. React. Kinet. Catal. Lett. ,2006,88: 135—142
[54] Széchényi A,Barthos R,Solymosi F. Catal. Lett. ,2006,110:85—89
[55] Bezuhanova C P,Lechert H T,Dimitrov C,et al. Journal of Molecular Structure,1984,114: 301—304
[56] Aguayo A T,Gayubo A G,Atutxa A,et al. Ind. Eng. Chem.Res. ,2002,41: 4216—4224
[57] Choudhary V R,Sansare S D. Appl. Catal. ,1984,10: 147—153
[58] Costa E,Ugulna A,Aguado J,et al. Ind. Eng. Chem. Process Des. Dev. ,1985,24: 239—244
[59] Gayubo A G,Tarrío A M,Aíuayo A T,et al. Ind. Eng. Chem.Res. ,2001,40: 3467—3474
[60] Oikawa H,Shibata Y,Inazu K,et al. Appl. Catal. ,2006,312: 181—185

[1] Xuechuan Wang, Yansong Wang, Qingxin Han, Xiaolong Sun. Small-Molecular Organic Fluorescent Probes for Formaldehyde Recognition and Applications [J]. Progress in Chemistry, 2021, 33(9): 1496-1510.
[2] Liu Huanjun, Gao Tengfei, Shi Da, Liu Jian, Ji Shengfu. Bifunctional Catalysts of Methanol Catalytic Conversion to Dimethoxymethane and Methyl Formate [J]. Progress in Chemistry, 2016, 28(6): 942-953.
[3] Zhao Yanxia, He Shenggui. Reactivity of Heteronuclear Oxide Clusters with Small Molecules [J]. Progress in Chemistry, 2016, 28(4): 401-414.
[4] Lin Ling, Zhu Qing, Xu Anwu. Anode Catalysts and Cathode Catalysts of Direct Methanol Fuel Cells [J]. Progress in Chemistry, 2015, 27(9): 1147-1157.
[5] Min Yuanyuan, Shang Yunshan, Song Yu, Li Guodong, Gong Yanjun. The Synthesis of Nanosheets Zeolite and Its Catalytic Application [J]. Progress in Chemistry, 2015, 27(8): 1002-1013.
[6] Rao Lu, Jiang Yanxia, Zhang Binwei, You Lexing, Li Zhanhong, Sun Shigang. Electrocatalytic Oxidation of Ethanol [J]. Progress in Chemistry, 2014, 26(05): 727-736.
[7] Chen Yanping, Cheng Dang-guo, Chen Fengqiu, Zhan Xiaoli. NO Decomposition and Selective Catalytic Reduction of NO over Cu-ZSM-5 Zeolite [J]. Progress in Chemistry, 2014, 26(0203): 248-258.
[8] Chen Yanping, Cheng Dangguo, Chen Fengqiu, Zhan Xiaoli. Selective Catalytic Reduction of NOx by Hydrocarbons over Copper-Free Metal Supported Zeolite [J]. Progress in Chemistry, 2013, 25(12): 2011-2019.
[9] Zhou Ying, Lin Yuanhua, Greta R. Patzke. Synchrotron Radiation for the Study of Hydrothermal Formation Mechanisms of Oxide Nanomaterials [J]. Progress in Chemistry, 2012, 24(08): 1583-1591.
[10] Chen Zhaoxu, Huang Yucheng, He Xiang. Theoretical Study of the Mechanism of Methanol Steam Reforming over Pd/ZnO [J]. Progress in Chemistry, 2012, 24(06): 873-878.
[11] Zhang Chao, Yin Xiuli, Wu Chuangzhi. Reactors for Hydrogen Production by Bio-Ethanol Reforming [J]. Progress in Chemistry, 2011, 23(4): 810-818.
[12] Wang Xindong, Xie Xiaofeng, Wang Meng, Liu Guicheng, Miao Ruiying, Wang Yituo, Yan Qun. Critical Materials and Technology in Direct Methanol Fuel Cells [J]. Progress in Chemistry, 2011, 23(0203): 509-519.
[13] Liu guangyu Tian Peng Liu Zhongmin. Modification of SAPO-34 Molecular Sieve Used for Methanol to Olefins Reaction [J]. Progress in Chemistry, 2010, 22(08): 1531-1537.
[14] . Pt-Based Electrocatalyst Materials [J]. Progress in Chemistry, 2010, 22(05): 852-860.
[15] . Applications of Supercritical Methanol in Chemical Reactions [J]. Progress in Chemistry, 2010, 22(05): 796-802.