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Progress in Chemistry 2009, Vol. 21 Issue (6): 1094-1100 Previous Articles   Next Articles

• Review •

Recent Advances in Mechanisms and Kinetics of Low-Temperature Selective Catalytic Reduction of NOX with NH3

Li Yuntao; Zhong Qin**   

  1. (School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China)
  • Received: Revised: Online: Published:
  • Contact: Zhong Qin E-mail:zq304@mail.njust.edu.cn; zq304@tom.com
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The mechanisms and kinetics of low-temperature selective catalytic reduction (SCR) have attracted many researchers’ attention. The mechanisms of low-temperature SCR is reviewed by the reaction pathways and reaction models, focusing on the role of oxygen in the low-temperature SCR, the adsorption of NO over the catalyst, the nature of the active NH3 species and the governing reaction models (Langmuir-Hinshelwood or Eley-Rideal). Moreover, combining with the mechanisms of low-temperature SCR, the kinetics of low-temperature SCR are critically discussed. Points of convergence and disagreement are underlined. The perspectives in low-temperature SCR are promoted.

Contents
1 Introduction
2 Mechanisms of low-temperature selective catalytic reduction of NOX with NH3
2.1 Reaction pathways of low-temperature NH3- SCR
2.2 Reaction mechanisms of low-temperature NH3- SCR
3 Kinetics of low-temperature NH3- SCR
4 Conclusion and perspectives

CLC Number: 

[ 1 ]  Jirat J , Stepanek F , Marek M, et al . Chem. Eng. Technol . , 2001 ,24 (1) : 35 —40
[ 2 ]  钟秦(Zhong Q) . 燃煤烟气脱硫脱硝控制技术及工程实例, 第二版( Technology and Application of Coal-Fired Flue Gas Desulfurization and Denitrification , 2nd ed. ) . 北京: 化学工业出版社(Beijing : Chemical Industry Press) , 2007. 317 —320
[ 3 ]  García-BordejéE , Calvillo L , Lázaro MJ , et al . Ind. Eng. Chem.Res. , 2004 , 43 : 4073 —4079
[ 4 ]  Koebel M, Elsener M, Madia G. Ind. Eng. Chem. Res. , 2001 ,40 : 52 —59
[ 5 ]  Koebel M, Madia G, Elsener M. Catal . Today , 2002 , 73 : 239 —247
[ 6 ]  Kang M, Kim D J , Park E D , et al . Appl . Catal . B : Environ. ,2006 , 68 : 21 —27
[ 7 ]  Arve K, Klingstedt F , Er? nen K, et al . Catal . Lett . , 2005 , 105 :133 —138
[ 8 ]  Klingstedt F , Arve K, Er? nen K, et al . Acc. Chem. Res. , 2006 ,39 : 273 —282
[ 9 ]  Lee J Y, Hong S H , Cho S P , et al . Curr. Appl . Phys. , 2006 , 6 :996 —1001
[10 ]  Qi G, Yang R T, Chang R. Appl . Catal . B : Environ. , 2004 , 51 :93 —106
[11 ]  Qi G, Yang R T. J . Catal . , 2003 , 217 : 434 —441
[12 ]  Long R Q , Yang R T. J . Am. Chem. Soc. , 1999 , 121 ( 23) :5595 —5596
[13 ]  Long R Q , Yang R T. Appl . Catal . B : Environ. , 2000 , 27 : 87 —95
[14 ]  Kim YA , Choi J H , Scott J , et al . Powder Technol . , 2008 , 180 :79 —85
[15 ]  Grossale A , Nova I , Tronconi E. Catal . Today , 2008 , 136 : 18 —27
[16 ]  Krishna K, Bueno-López A , Makkee M, et al . Appl . Catal . B :Environ. , 2007 , 75 : 201 —209
[17 ]  Zhou G, Shah P R , Gorte RJ . Catal . Lett . , 2008 , 120 : 191 —197
[18 ]  Irfan M F , Goo J H , Kim S D. Appl . Catal . B : Environ. , 2008 ,78 : 267 —274
[19 ]  Grossale A , Nova I , Tronconi E , et al . J . Catal . , 2008 , 256 :312 —322
[20 ]  Peìa D A , Uphade B S , Smirniotis P G. J . Catal . , 2004 , 221 :421 —431
[21 ]  唐晓龙(Tang X L) . 低温选择性催化还原NOx 技术及反应机理( Technology and Mechanisms of Low-Temperature Selective Catalytic Reduction of NOx ) . 北京: 冶金工业出版社(Beijing :Metallurgical Industry Press) , 2007. 23 —34 , 110 —130
[22 ]  Kijlstra WS , Brands D S , Poels E K, et al . J . Catal . , 1997 , 171 :208 —218
[23 ]  Kijlstra W S , Brands D S , Smit H I , et al . J . Catal . , 1997 , 171 :219 —230
[24 ]  Kapteijn F , Singoredjo L , van Driel M, et al . J . Catal . , 1994 ,150 : 105 —116
[25 ]  Yao H C , Shelef M. J . Catal . , 1973 , 31 : 377 —383
[26 ]  Baltanas MA , Stiles A B , Katzer J R. J . Catal . , 1984 , 88 : 362 —373
[27 ]  Singoredio L , Korver R , Kapteijn F , et al . Appl . Catal . B :Environ. , 1992 , 1 (4) : 297 —316
[28 ]  Kapteijn F , Singoredjo L , Dekker N J J , et al . Ind. Eng. Chem.Res. , 1993 , 32 : 445 —452
[29 ]  Marbán G, Fuertes A B. Catal . Lett . , 2002 , 84 : 13 —19
[30 ]  Richter M, Trunschke A , Bentrup U , et al . J . Catal . , 2002 , 206 :98 —113
[31 ]  Marbán G, Valdés-Solís T, Fuertes A B. Phys. Chem. Chem.Phys. , 2004 , 6 : 453 —464
[32 ]  Huang Z, Liu Z, Zhang X, et al . Appl . Catal . B : Environ. , 2006 ,63 : 260 —265
[33 ]  Amore J M G S , Escribano V S , Ramis G, et al . Appl . Catal . B :Environ. , 1997 , 13 : 45 —58
[34 ]  Wu Z, Jiang B , Liu Y, et al . Environ. Sci . &Technol . , 2007 , 41(16) : 5812 —5817
[35 ]  Li J , Chen J , Ke R , et al . Catal . Commun. , 2007 , 8 : 1896 —1900
[36 ]  Tops?e N Y. J . Catal . , 1991 , 128 : 499 —511
[37 ]  Tops?e N Y. Science , 1994 , 265 : 1217 —1219
[38 ]  Tops?e N Y, Tops?e H , Dumesic J A. J . Catal . , 1995 , 151 :226 —240
[39 ]  Schneider H , Tschudin S , Schneider M, et al . J . Catal . , 1994 ,147 : 5 —14
[40 ]  Tops?e N Y, Dumesic J A , Tops?e H. J . Catal . , 1995 , 151 :241 —252
[41 ]  Smirniotis P G, Peìa D A , Uphade B S. Angew. Chem. Int . Ed. ,2001 , 40 (13) : 2479 —2482
[42 ]  Liang X, Li J H , Lin Q C , et al . Catal . Commun. , 2007 , 8 :1901 —1904
[43 ]  Datka J , Turek A M, Wachs I E , et al . J . Catal . , 1992 , 135 (1) :186 —199
[44 ]  Niiyama H , Murata K, Can H V , et al . J . Catal . , 1980 , 63 :1 —10
[45 ]  Kantcheva M, Bushev V , Klissurski D. J . Catal . , 1994 , 145 :96 —106
[46 ]  Kijlstra W S , Brands D S , Poels E K, et al . Catal . Today , 1999 ,50 : 133 —140
[47 ]  Notoya F , Su C , Sasaoka E. Ind. Eng. Chem. Res. , 2001 , 40 :3732 —3739
[48 ]  Uddin M A , Ishibe K, Wu S J , et al . Ind. Eng. Chem. Res. ,2007 , 46 : 1672 —1676
[49 ]  Kijlstra W S , Daamen J C M L , van de Graaf J M, et al . Appl .Catal . B : Environ. , 1996 , 7 : 337 —357
[50 ]  Huang J H , Tong ZQ , Huang Y, et al . Appl . Catal . B : Environ. ,2007 , 78 : 309 —314
[51 ]  Marbán G, Antuìa R , Fuertes A B. Appl . Catal . B : Environ. ,2003 , 41 : 323 —338
[52 ]  Valdés-Solís T, Marbán G, Fuertes A B. Appl . Catal . B :Environ. , 2003 , 46 : 261 —271
[53 ]  Odenbrand C U I , Gabrielsson P L T, Brandin J GM, et al . Appl .Catal . , 1991 , 78 : 109 —122
[54 ]  Duffy B L , Curry-Hyde H E , Cant N W, et al . Appl . Catal . B :Environ. , 1994 , 5 : 133 —147
[55 ]  Wu Z,Jiang B ,Liu Y, et al . J . Hazardous Mater. , 2007 , 145 :488 —494
[56 ]  Busca G, Lietti L , Ramis G, et al . Appl . Catal . B : Environ. ,1998 , 18 : 1 —36

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