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Mesoporous oxides TiO2 and ZrO2, synthesized by surfactant templating via a neutral C13(EO)6–Zr(OC3H7)4 assembly pathway, and ceria‐modified TiO2 and ZrO2, prepared by a deposi‐tion–precipitation (DP) method, featuring high surface areas and uniform pore size distributions were used as supports for gold catalysts. The supported gold catalysts were assessed for the cata‐lytic abatement of air pollutants, i.e., CO, CH3OH, and (CH3)2O. The gold was supported on the mes‐oporous oxides by a DP method. The supports and catalysts were characterized by powder X‐ray diffraction, high‐resolution transmission electron microscopy, N2 adsorption–desorption analysis, and temperature‐programmed reduction technique. A high degree of synergistic interaction be‐tween ceria and mesoporous ZrO2 and TiO2 as well as a positive modification of the structural and catalytic properties by ceria was observed. The ceria additive interacts with the mesoporous oxides and induces a strong effect on the reducibility of the supports. The catalytic behavior of the catalysts was discussed to determine the role of the ceria modifying additive and possible interaction be‐tween the gold nanoparticles and ceria‐mesoporous oxide supports. The gold catalysts supported on ceria‐modified mesoporous ZrO2 displayed superior catalytic activity (~100%conversion of CO at 10 °C and CH3OH at 60 °C). The high catalytic activity can be attributed to the ability of the sup‐port to assist oxygen vacancies formation. The studies indicate that the ceria‐modified mesoporous oxide supports have potential as supports for gold‐based catalysts.

参考文献

[1] Vieira Soares A P;Farinha Portela M;Kiennemann A .[J].CATALYSIS COMMUNICATIONS,2001,2:159.
[2] Tatibou?t J M .[J].Applied Catalysis A:General,1997,148:213.
[3] Armor N .[J].Research on Chemical Intermediates,1998,24:105.
[4] Guczi L;Borko L;Schay Z .[J].Studies in surface science and catalysis,1998,113:69.
[5] Imamura S .[J].Industrial and Engineering Chemistry Research,1999,38:1743.
[6] Zwinkels M F M;Jaras S G;Menon P G;Griffin T A .[J].CATALYSIS REVIEWS-SCIENCE AND ENGINEERING,1993,35:319.
[7] Liotta L F .[J].Applied Catalysis B:Environmental,2010,100:403.
[8] Santos V P;Carabineiro S A C;Tavares P B;Pereira M F R órf?o J J M Figueiredo J L .[J].Applied Catalysis B:Environmental,2010,99:198.
[9] Tang X L;Zhang B C;Li Y;Xu Y D Xin Q Shen W J .[J].Catalysis Today,2004,93-95:191.
[10] Mechandjiev D R;Dimitrova P G;Tzolovski I A;Raevski A B .[P].WO Patent 2003061821,2003.
[11] Scirè S;Liotta L F .[J].Applied Catalysis B:Environmental,2012,125:222.
[12] Barakat T;Rooke J C;Genty E;Cousin R Siffert S Su B L .[J].Energy Environ Sci,2013,6:371.
[13] Haruta M;Ueda A;Tsubota S;Torres Sanchez R M .[J].Catalysis Today,1996,29:443.
[14] Petrov L A .[J].Studies in surface science and catalysis,2000,130:2345.
[15] Wang, CT;Ro, SH .Nanoparticle iron-titanium oxide aerogels[J].Materials Chemistry and Physics,2007(1):41-48.
[16] Bonelli R;Albonetti S;Morandi V;Ortolani L Riccobene P M Scirè S Zacchini S .[J].Applied Catalysis A:General,2011,395:10.
[17] Li W B;Wang J X;Gong H .[J].Catalysis Today,2009,148:81.
[18] Delimaris D;Ioannides T .[J].Applied Catalysis B:Environmental,2009,89:295.
[19] Liotta L F;Ousmane M;Di Carlo G;Pantaleo G Deganello G Boreave A Giroir-Fendler A .[J].Catalysis Letters,2009,127:270.
[20] Delimaris D;Ioannides T .[J].Applied Catalysis B:Environmental,2008,84:303.
[21] Gutierrez-Ortiz JI;de Rivas B;Lopez-Fonseca R;Gonzalez-Velasco JR .Catalytic purification of waste gases containing VOC mixtures with Ce/Zr solid solutions[J].Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications,2006(3/4):191-200.
[22] Tabakova T;Dimitrov D;Manzoli M;Vindigni F Petrova P Ilieva L Zanella R Ivanov K .[J].CATALYSIS COMMUNICATIONS,2013,35:51.
[23] Idakiev V;Ilieva L;Andreeva D;Blin J L Gigot L Su B L .[J].Applied Catalysis A:General,2003,243:25.
[24] Ousmane M;Liotta L F;Pantaleo G;Venezia A M Di Carlo G Aouine M Retailleau L Giroir-Fendler A .[J].Catalysis Today,2011,176:7.
[25] Zhang Y B;Shen Y N;Yang X Z;Sheng S S Wang T Adebajo M F Zhu H Y .[J].Journal of Molecular Catalysis A:Chemical,2010,316:100.
[26] Ying F;Wang S J;Au C T;Lai S Y .[J].Microporous and Mesoporous Materials,2011,142:308.
[27] Gennequin C;Lamallem M;Cousin R;Siffert S Aissi F Aboukais A .[J].Catalysis Today,2007,122:301.
[28] Gennequin, C;Lamallem, M;Cousin, R;Siffert, S;Idakiev, V;Tabakova, T;Aboukais, A;Su, BL .Total oxidation of volatile organic compounds on Au/Ce-Ti-O and Au/Ce-Ti-Zr-O mesoporous catalysts[J].Journal of Materials Science,2009(24):6654-6662.
[29] Idakiev V;Tabakova T;Tenchev K;Yuan Z Y Ren T Z Su B L .[J].Catalysis Today,2007,128:223.
[30] Idakiev V;Tabakova T;Naydenov A;Yuan ZY;Su BL .Gold catalysts supported on mesoporous zirconia for low-temperature water-gas shift reaction[J].Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications,2006(3/4):178-186.
[31] Barret E P;Joyner L G;Halenda P P .[J].Journal of the American Chemical Society,1951,73:373.
[32] Brunauer S;Emmett P H;Teller E .[J].Journal of the American Chemical Society,1938,60:309.
[33] Idakiev V;Tabakova T;Tenchev K;Yuan Z Y Ren T Z Su B L .[J].Journal of Porous Materials,2012,19:15.
[34] Del Monte F;Larsen W;Mackenzie J D .[J].Journal of the American Ceramic Society,2000,83:1506.
[35] Brunauer S;Deming L S;Deming W E;Teller E .[J].Journal of the American Chemical Society,1940,62:1723.
[36] Blin J L;Flamant R;Su B L .[J].International Journal of Inorganic Materials,2001,3:959.
[37] Blin J L;Léonard A;Yuan Z Y;Gigot L Vantomme A Cheetham A K Su B L .[J].ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2003,42:2872.
[38] Idakiev V;Tabakova T;Yuan Z Y;Su B L .[J].Applied Catalysis A:General,2004,270:135.
[39] Yao H C;Yu Yao Y F .[J].Journal of Catalysis,1984,86:254.
[40] Andreeva D;Idakiev V;Tabakova T;Ilieva L Falaras P Bourlinos A Travlos A .[J].Catalysis Today,2002,72:51.
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