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Progress in Chemistry 2010, Vol. 22 Issue (08): 1531-1537 Previous Articles   Next Articles

• Review •

Modification of SAPO-34 Molecular Sieve Used for Methanol to Olefins Reaction

Liu guangyu1,2  Tian Peng1  Liu Zhongmin1*   

  1. (1.Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China;
    2.School of Chemistry&Chemical Engineering, Henan University of Technology, Zhengzhou 450001,China)
  • Received: Revised: Online: Published:
  • Contact: Liu Zhongmin E-mail:liuzm@dicp.ac.cn
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Methanol to olefins( MTO) reaction is the key process of olefins production from coal or natural gas as resources, which is a substitute of oil route. SAPO-34 molecular sieve exhibits excellent performance in MTO reaction, due to its small pore, suitable acidity and good thermal/hydrothermal stability. Research on the modification of SAPO-34 can not only help to improve its catalytic properties, but also benefit to better understand the reaction mechanism. The present article reviews various modification methods of SAPO-34 used as MTO catalyst, such as steam treatment, selective poisoning of acid sites, metal modification, ship-in-a-bottle method, silanization modification, F- ion modification, nitridation modification, etc. The further research directions are also discussed.

Contents 
1 Introduction 
2 Structure and acidity of SAPO-34 
3 Modification of SAPO-34 molecular sieve used for MTO reaction 
3.1 Steam treatment 
3.2 Selective poisoning of acid sites 
3.3 Metal modification 
3.4 Ship-in-a-bottle method 
3.5 Silanization modification 
3.6 F- ion modification
3.7 Nitridation modification 
3.8 Phosphorous compounds modification 
4 Conclusions and perspective

CLC Number: 

[1 ] 任诚( Ren C ) . 精细化工中间体( Fine Chemical
Intermediates) ,2007,37 (5) : 6—9
[2 ] Chang C D. Catal. Rev. ,1983,25 (1) : 1—118
[3 ] Sardesai A,Tartamella T,Lee S G. Fuel Sci. Technol. Int. ,
1996,14 (5) : 703—712
[4 ] Stcker M. Micropor. Mesopor. Mater. ,1999,29 (1 /2) : 3—
48
[5 ] Aguayo A T,Gayubo A G,Vivanco R,et al. Appl. Catal. A,
2005,283 (1 /2) : 197—207
[6 ] Qi G Z,Xie Z K,Yang W M,et al. Fuel Process. Technol. ,
2007,88 (5) : 437—441
[7 ] Lee Y J,Baek S C,Jun K W. Appl. Catal. A,2007,329:
130—136
[8 ] Wu X C,Abraha M G,Anthony R G. Appl. Catal. A,2004,
260 (1) : 63—69
[9 ] Dubois D R,Obrzut D L,Liu J,et al. Fuel Process. Technol. ,
2003,83 (1 /3) : 203—218
[10] Fu H,Song W G,Marcus D M,et al. J. Phys. Chem. B,
2002,106 (22) : 5648—5652
[11] Park Y K,Baek S W,Ihm S K. J. Ind. Eng. Chem. ,2001,7
(3) : 167—172
[12] Song W G,Fu H,Haw J F. J. Phys. Chem. B,2001,105
(51) : 12839—12843
[13] Song W G,Fu H,Haw J F. J. Am. Chem. Soc. ,2001,123
(20) : 4749—4754
[14] Hunger M,Seiler M,Buchholz A. Catal. Lett. ,2001,74 (1 /
2) : 61—68
[15] Arstad B,Kolboe S. Catal. Lett. ,2001,71 (3 /4) : 209—212
[16] Chen D,Moljord K,Fuglerud T,et al. Micropor. Mesopor.
Mater. ,1999,29 (1 /2) : 191—203
[17] Chen D,Rebo H P,Gronvold A,et al. Micropor. Mesopor.
Mater. ,2000,35 (6) : 121—135
[18] Wilson S,Barger P. Micropor. Mesopor. Mater. ,1999,29 (1 /
2) : 117—126
[19] Popova M,Minchev C,Kanazirev V. Appl. Catal. A,1998,
169 (2) : 227—235
[20] Liang J,Li H Y,Zhao S Q,et al. Appl. Catal. ,1990,64
(1) : 31—40
[21] Xu Y,Grey C P,Thomas J M,et al. Catal. Lett. ,1990,4
(3) : 251—260
[22] Dahl I M,Kolboe S. Catal. Lett. ,1993,20 (3 /4) : 329—336
[23] Dahl I M,Kolboe S. J. Catal. ,1994,149 (2) : 458—464
[24] Haw J F,Marcus D M. Top. Catal. ,2005,34 (1 /4) : 41—48
[25] Haw J F,Song W G,Marcus D M,et al. Accounts. Chem.
Res. ,2003,36 (5) : 317—326
[26] Arstad B,Kolboe S,Swang O. J. Phys. Chem. B,2002,106
(49) : 12722—12726
[27] Arstad B,Kolboe S,Swang O. J. Phys. Chem. B,2004,108
(7) : 2300—2308
[28] Arstad B,Kolboe S,Swang O. J. Phys. Org. Chem. ,2006,19
(2) : 81—92
[29] Arstad B,Nicholas J B,Haw J F. J. Am. Chem. Soc. ,2004,
126 (9) : 2991—3001
[30] Bjorgen M,Olsbye U,Kolboe S. J. Catal. ,2003,215 ( 1 ) :
30—44
[31] Bjorgen M,Olsbye U,Petersen D,et al. J. Catal. ,2004,221
(1) : 1—10
[32] Cui Z M,Liu Q,Song W G,et al. Angew. Chem. Int. Ed. ,
2006,45 (39) : 6512—6515
[33] Song W G,Haw J F,Nicholas J B,et al. J. Am. Chem. Soc. ,
2000,122 (43) : 10726—10727
[34] Song W G,Nicholas J B,Haw J F. J. Phys. Chem. B,2001,
105 (19) : 4317—4323
[35] Song W G,Haw J F. Angew. Chem. Int. Ed. ,2003,42 (8) :
891—894
[36] Sastre G,Lewis D W,Catlow C R A. J. Phys. Chem. ,1996,
100 (16) : 6722—6730
[37] Liu G Y,Tian P,Zhang Y,et al. Micropor. Mesopor. Mater. ,
2008,114 (1 /3) : 416—423
[38] 李军( Li J) ,张凤美( Zhang F M) ,李黎声( Li L S) 等. 石油
炼制与化工( Petroleum Processing and Petrochemicals) ,2005,
36 (6) : 49—52
[39] 刘广宇( Liu G Y) . 中国科学院大连化学物理研究所博士学
位论文( Doctoral Dissertation of Dalian Institute of Chemical
Physics,Chinese Academy of Sciences) ,2008
[40] Pastore H O,Coluccia S,Marchese L. Ann. Rev. Mater. Res. ,
2005,35: 351—395
[41] Vomscheid R,Briend M,Peltre M J,et al. J. Phys. Chem. ,
1994,98 (38) : 9614—9618
[42] Barger P T. US 5095163,1992
[43] Van Niekerk M J,Fletcher J C Q,O′Connor C T. Appl. Catal.
A,1996,138 (1) : 135—145
[44] Liu G Y,Tian P,Li J Z,et al. Micropor. Mesopor. Mater. ,
2008,111 (1 /3) : 143—149
[45] 刘中民( Liu Z M) ,黄兴云(Huang X Y) ,何长青( He C Q)
等. 催化学报( Chinese Journal of Catalysis) ,1996,17 ( 6 ) :
540—543
[46] Xu L,Liu Z M,Du A P,et al. Stud. Surf. Sci. Catal. ,2004,
147: 445—450
[47] Hartmann M,Kevan L. Chem. Rev. ,1999,99 ( 3 ) : 635—
663
[48] Flanigen E M,Lok B M,Patton R L,et al. Stud. Surf. Sci.
Catal. ,1986,28: 103—112
[49] Wilson S T. Stud. Surf. Sci. Catal. ,2001,137: 229—260
[50] Inui T,Kang M. Appl. Catal. A,1997,164 (1 /2) : 211—223
[51] Kang M. J. Mol. Catal. A,2000,160 (2) : 437—444
[52] Sun H N,Vaughn S N. US 5962762,1999
[53] Kang M,Inui T. Catal. Lett. ,1998,53 (3 /4) : 171—176
[54] Obrzut D L,Adekkanattu P M,Thundimadathil J,et al. React.
Kinet. Catal. Lett. ,2003,80 (1) : 113—121
[55] Haw J F,Song W G. US 7078364,2006
[56] Mees F D P,van der Voort P,Cool P,et al. J. Phys. Chem.
B,2003,107 (14) : 3161—3167
[57] Wang K. US 6812373,2004
[58] Wang K. US 6989470,2006
[59] Hidaka T,Yokose E. US 6153798,2000
[60] Wu A H,Melton R,Drake C A. US 6046371,2000
[61] Rajic N,Ristic A,Tuel A,et al. Zeolites,1997,18 ( 2 /3 ) :
115—118
[62] 刘红星( Liu H X) ,谢在库( Xie Z K) ,张成芳( Zhang C F)
等. 催化学报( Chinese Journal of Catalysis) ,2003,24 ( 4 ) :
279—283
[63] Marchese L,Frache A,Gianotti E,et al. Micropor. Mesopor.
Mater. ,1999,30 (1) : 145—153
[64] 刘红星( Liu H X) ,谢在库( Xie Z K) ,张成芳( Zhang C F)
等. 催化学报( Chinese Journal of Catalysis) ,2003,24 (11 ) :
849—855
[65] 杜爱萍(Du A P) . 中国科学院大连化学物理研究所硕士学
位论文( Master Dissertation of Dalian Institute of Chemical
Physics,Chinese Academy of Sciences) ,2004
[66] 关新新(Guan X X) ,刘克成( Liu K C) ,武光军(Wu G J) 等.
分子催化( Journal of Molecular Catalysis China ) ,2006,20
(3) : 270—272
[67] 关新新(Guan X X) ,武光军(Wu G J) ,刘克成( Liu K C) 等.
石油学报: 石油加工(Acta Petrolei Sinica Petroleum Processing
Section) ,2007,23 (1) : 15—19
[68] Guan X X,Zhang F X,Wu G J,et al. Mater. Lett. ,2006,60
(25 /26) : 3141—3144
[69] Zhao T S,Takemoto T,Tsubaki N. Catal. Commun. ,2006,7
(9) : 647—650
[70] 田鹏( Tian P) ,刘中民( Liu Z M) ,杨立新(Yang L X) 等. CN
101121531,2008
[71] Wu A H,Yao J H,Drake C A. US 6472569,2002
[72] Sun H N. US 5925586,1999

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