中文
Announcement
More
Progress in Chemistry 2006, Vol. 18 Issue (0708): 849-853   Next Articles

• Review •

Catalytic Applications of the Mesoporous Materials in Epoxidation of Olefins

Xuefeng Li1;Huanxin Gao2;Qingling Chen1,2*   

  1. 1. Department of Chemistry and Pharmacy, East China University of Science and Technology, Shanghai 200237, China; 2. Shanghai Research Institute of Petrochemical Technology, Shanghai 201208, China
  • Received: Revised: Online: Published:
  • Contact: Qingling Chen
PDF ( 1158 ) Cited
Export

EndNote

Ris

BibTeX

The catalytic applications of the mesoporous materials in epoxidation of olefins are summarized, including the preparation methods and modification of the materials, catalytic performance and characterization of active sites. High dispersion of tetra-coordinated titanium is achieved by means of adjusting optimal combination of titanium and silicon atoms, hence the activity of the materials can be improved. On the other hand, the activity and selectivity can also be greatly promoted by silylation due to the enhancement of the surface hydrophobicity of the materials. The framework titanium atoms and their coordination state can be characterized by spectroscopic technologies and the molecular simulation.

CLC Number: 

[ 1 ] 张义华( Zhang Y H) , 王祥生(Wang X S) , 郭新闻( Guo X W) . 化学进展(Progress in Chemistry) , 2001 , 13(1) : 19 —24
[ 2 ] 王洪林(Wang H L ) , 王祥生(Wang X S) . 石油化工(Petrochemical Technology) , 1998 , 27(11) : 844 —848
[ 3 ] Taramasso M. US 4 410 501 , 1983
[ 4 ] Kressge C T , Leonowicz M E , Roth W J , et al . Nature , 1992 ,359 : 710 —712
[ 5 ] Beck J S , Vartul J C , Roth W J , et al . J . Am. Chem. Soc. ,1992 , 114 (27) : 10834 —10843
[ 6 ] Tanev P T , Chibwe M, Pinnavaia T J . Nature , 1994 , 368 :321 —323
[ 7 ] Zhao D , Feng J , Huo Q , et al . Science , 1998 , 279 : 548 —552
[ 8 ] Shan Z , Maschmeyer T , Jansen J C. WO 015 551 , 2000
[ 9 ] Shan Z , Gianotti E , Jansen J C , et al . Chem. Eur. J , 2001 , 7 :1437 —1443
[10] Jansen J C , Shan Z , Marchese L , et al . Chem. Commun. ,2001 , 713 —714
[11] Notari B. Adv. Catal . , 1996 , 41 : 253 —334
[12] Corma A. Chem. Rev. , 1997 , 97 : 2373 —2419
[14] Corma A , Navarro M T , Pérez-Pariente J . J . Chem. Soc. ,Chem. Commun. , 1994 , (2) : 147 —148
[15] Maschmeyer T , Rey F , Sankar G, et al . Nature , 1995 , 378 :159 —162
[16] Koyano K A , Tatsumi T. Chem. Commun. , 1996 , 145 —146
[17] Camblor M A , Corma A , Esteve P , et al . Chem. Commun. ,1997 , 795 —796
[18] Corma A , Navarro M T , Rey F , et al . Chem. Commun. , 1998 ,1899 —1900
[19] Li K T , Lin C C. Catal . Today , 2004 , 97 : 257 —261
[20] Sever R R , Alcala R , Dumesic J A , et al . Micro. Meso.Mater. , 2003 , 66 : 53 —67
[21] Wulff H P. US 3 923 843 , 1975
[22] Wattimena F. GB 1 249 079 , 1971
[23] Pena M L , Dellarocca V , Rey F , et al . Micro. Meso. Mater. ,2001 , 44/45 : 345 —356
[24] Thomas J M. Angew. Chem. Int . Ed. , 1999 , 38 : 3588 —3628
[25] Oldroyd R D , Thomas J M, Sankar G. Chem. Commun. , 1997 ,2025 —2026
[26] Ziolek M, Nowak I. Zeolites , 1997 , 18 : 356 —360
[27] Nowak I , Kilos B , Ziolek M. Catal . Today , 2003 , 78 : 487 —498
[28] Gallo J M R , Paulino I S , Schuchardt U. Appl . Catal . A , 2004 ,266 : 223 —227
[29] Murata K, Liu Y Y, Inaba M, et al . Catal . Today , 2004 , 91/92 : 39 —42
[30] Liu Y Y, Murata K, Inaba M, et al . Catal . Lett . , 2003 , 89 :49 —53
[31] Liu Y Y, Murata K, Inaba M, et al . Catal . Lett . , 2004 , 93 :109 —112
[32] Jaruptrakorn J T , Tilley J D. J . Am. Chem. Soc. , 2002 , 124 :8380 —8388
[33] Uphade B S , Yamada Y, Akita T , et al . Appl . Catal . , 2001 ,215 : 137 —148
[34] 霍启升(Huo Q S) . 分子筛与多孔材料化学(Chemistry of Molecular Sieves and PorousMaterials) . 徐如人(Xu R R) , 庞文琴( Pang W Q) 编. 北京: 科学出版社(Beijing : Science Press) , 2003
[35] Damyanova S , Dimitrov L , Mariscal R. Appl . Catal . A , 2003 ,256 : 183 —197
[36] Blasco T , Corma A , Nanarro M T , et al . J . Catal . , 1995 , 156 :65 —74
[37] Zhang W Z , Froba M, Wang J L , et al . J . Am. Chem. Soc. ,1996 , 118 : 9164 —9171
[38] Thomas J M, Sankar G . Acc. Chem. Res. , 2001 , 34 : 571 —581
[39] Hagen A , Schueler K, Roessner F. Micro. Meso. Mater. , 2002 ,51 : 23 —33
[40] Li C , Xiong G, Liu J K, et al . Angew. Chem. Int . Engl . ,1999 , 38 : 2220 —2222
[41] Yu J Q , Feng Z C , Xu L , et al . Chem. Mater. , 2001 , 13 :994 —998
[42] Lang C N , Delichere P , Tuel A. Micro. Meso. Mater. , 2002 ,56 : 202 —217
[43] LeNoc L , On D T , Solomykina S , et al . Stud. Surf . Sci . Catal . ,1996 , 101 : 611 —620
[44] Bordiga S , Coluccia S , Lamberti C , et al . J . Phys. Chem. ,1994 , 98 : 4125 —4132
[45] Marchese L , Maschmeyer T , Gianotti E , et al . J . Phys. Chem. ,1997 , 101 : 8836 —8838
[46] Abbenhuis H C L , Krijnen S , van Santen R A . J . Chem. Soc. ,Chem. Commun. , 1997 , 331 —332

[1] Lan Mingyan, Zhang Xiuwu, Chu Hongyu, Wang Chongchen. MIL-101(Fe) and Its Composites for Catalytic Removal of Pollutants: Synthesis Strategies, Performances and Mechanisms [J]. Progress in Chemistry, 2023, 35(3): 458-474.
[2] Liu Yvfei, Zhang Mi, Lu Meng, Lan Yaqian. Covalent Organic Frameworks for Photocatalytic CO2 Reduction [J]. Progress in Chemistry, 2023, 35(3): 349-359.
[3] Kelong Fan, Lizeng Gao, Hui Wei, Bing Jiang, Daji Wang, Ruofei Zhang, Jiuyang He, Xiangqin Meng, Zhuoran Wang, Huizhen Fan, Tao Wen, Demin Duan, Lei Chen, Wei Jiang, Yu Lu, Bing Jiang, Yonghua Wei, Wei Li, Ye Yuan, Haijiao Dong, Lu Zhang, Chaoyi Hong, Zixia Zhang, Miaomiao Cheng, Xin Geng, Tongyang Hou, Yaxin Hou, Jianru Li, Guoheng Tang, Yue Zhao, Hanqing Zhao, Shuai Zhang, Jiaying Xie, Zijun Zhou, Jinsong Ren, Xinglu Huang, Xingfa Gao, Minmin Liang, Yu Zhang, Haiyan Xu, Xiaogang Qu, Xiyun Yan. Nanozymes [J]. Progress in Chemistry, 2023, 35(1): 1-87.
[4] Hao Chen, Xu Xu, Chaonan Jiao, Hao Yang, Jing Wang, Yinxian Peng. Fabrication of Multifunctional Core-Shell Structured Nanoreactors and Their Catalytic Performances [J]. Progress in Chemistry, 2022, 34(9): 1911-1934.
[5] Dang Zhang, Xi Wang, Lei Wang. Biomedical Applications of Enzyme-Powered Micro/Nanomotors [J]. Progress in Chemistry, 2022, 34(9): 2035-2050.
[6] Bowen Xia, Bin Zhu, Jing Liu, Chunlin Chen, Jian Zhang. Synthesis of 2,5-Furandicarboxylic Acid by the Electrocatalytic Oxidation [J]. Progress in Chemistry, 2022, 34(8): 1661-1677.
[7] Huiyue Wang, Xin Hu, Yujing Hu, Ning Zhu, Kai Guo. Enzyme-Catalyzed Atom Transfer Radical Polymerization [J]. Progress in Chemistry, 2022, 34(8): 1796-1808.
[8] Ru Jiang, Chenxu Liu, Ping Yang, Shuli You. Condensed Matter Chemistry in Asymmetric Catalysis and Synthesis [J]. Progress in Chemistry, 2022, 34(7): 1537-1547.
[9] Xinglong Li, Yao Fu. Preparation of Furoic Acid by Oxidation of Furfural [J]. Progress in Chemistry, 2022, 34(6): 1263-1274.
[10] Peng Wang, Huan Liu, Da Yang. Recent Advances on Tandem Hydroformylation of Olefins [J]. Progress in Chemistry, 2022, 34(5): 1076-1087.
[11] Xiaoqing Ma. Graphynes for Photocatalytic and Photoelectrochemical Applications [J]. Progress in Chemistry, 2022, 34(5): 1042-1060.
[12] Xiaowei Li, Lei Zhang, Qixin Xing, Jinyu Zan, Jin Zhou, Shuping Zhuo. Construction of Magnetic NiFe2O4-Based Composite Materials and Their Applications in Photocatalysis [J]. Progress in Chemistry, 2022, 34(4): 950-962.
[13] Fengshou Yu, Jiayu Zhan, Lu-Hua Zhang. The progress on Electrochemical CO2-to-Formate Conversion by p-Block Metal Based Catalysts [J]. Progress in Chemistry, 2022, 34(4): 983-991.
[14] Hao Sun, Chaopeng Wang, Jun Yin, Jian Zhu. Fabrication of Electrocatalytic Electrodes for Oxygen Evolution Reaction [J]. Progress in Chemistry, 2022, 34(3): 519-532.
[15] Xin Pang, Shixiang Xue, Tong Zhou, Hudie Yuan, Chong Liu, Wanying Lei. Advances in Two-Dimensional Black Phosphorus-Based Nanostructures for Photocatalytic Applications [J]. Progress in Chemistry, 2022, 34(3): 630-642.