欢迎登录材料期刊网

材料期刊网

高级检索

纳米CeO2作为一种重要的催化材料,在CO催化氧化、有机合成催化、光催化,以及生物抗氧化等方面都有着重要的应用.纳米CeO2中Ce3+和Ce4+间的可逆转变过程伴随着氧空穴的生成与消除,从而赋予了纳米CeO2优异的氧存储与氧释放能力,也成为CeO2催化应用的基础.本文在简要总结近年来CeO2催化研究及应用进展的基础上,以CO催化氧化反应为例,分别从尺寸、形貌、氧缺陷活性位点三个方面介绍了影响CeO2催化活性的因素,对纳米CeO2的催化基础研究及应用发展提出了展望.

参考文献

[1] 徐光宪.稀土[M].北京:冶金工业出版社,1995
[2] Guo Y;Lu G;Zhang Z;Zhang S,Qi Y,Liu Y .Preparation of Cex Zr1-xO2 (x =0.75,0 62) solid solution and its application in Pd-only three-way catalysts[J].Catalysis Today,2007,126:296.
[3] Gorte R J .Ceria in catalysis:From automotive applications to the water-gas shift reaction[J].AICHE Journal,2010,56:5.
[4] Avert P V;Weckhuysen B M .Low-temperature destruction of chlorinated hydrocarbons over lanthanide oxide based catalysts[J].ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2002,114:4924.
[5] Aneggi E;Leitenburg C D;Llorca J;Trovarelli A .Higher activity of Diesel soot oxidation over polycrystalLine ceria and ceria-zirconia solid solutions from more reactive surface planes[J].Catalysis Today,2012,197:119.
[6] Deluga GA;Salge JR;Schmidt LD;Verykios XE .Renewable hydrogen from ethanol by autothermal reforming[J].Science,2004(5660):993-997.
[7] Zhou J;Liu Z;Li F Y .Upconversion nanophosphors for small-animal imaging[J].Chemical Society Reviews,2012,41:1323.
[8] Wang, Y.-F.;Liu, G.-Y.;Sun, L.-D.;Xiao, J.-W.;Zhou, J.-C.;Yan, C.-H. .Nd3+-sensitized upconversion nanophosphors: Efficient in vivo bioimaging probes with minimized heating effect[J].ACS nano,2013(8):7200-7206.
[9] Zhou JC;Yang ZL;Dong W;Tang RJ;Sun LD;Yan CH .Bioimaging and toxicity assessments of near-infrared upconversion luminescent NaYF4:Yb,Tm nanocrystals.[J].Biomaterials,2011(34):9059-9067.
[10] Weiss G B .Cellular pharmacology of lanthanum[J].Annual Review of Pharmacology,1974,14:343.
[11] Trovarelli A;Leitenburg C D;Boaro M;Dolcetti G .The utilization of ceria in industrial catalysis[J].Catalysis Today,1999,50:353.
[12] Terribile D;Trovarelli A;Llorca J;Leitenburg C D Dolcetti G .The preparation of high surface area CeO2-ZrO2 mixed oxides by a surfactant-assisted approach[J].Catalysis Today,1998,43:79.
[13] Aneggi E;Boaro M;Leitenburg C D;Dolcetti G Trovarelli A .Insights into the redox properties of ceria based oxides and their implications in catalysis[J].Journal of Alloys and Compounds,2006,408-412:1096.
[14] Sun C W;Li H;Chen L Q .Nanostructured ceriabased materials:synthesis,properties,and applications[J].Energ Environ Sci,2012,5:8475.
[15] Zhou H P;Zhang Y W;Si R;Zhang L S Song W G Yan C H .Dimension-manipulated ceria nanostructures (0D uniform nanocrystals,2D polycrystalline assembly,and 3D mesoporous framework) from cerium octylate precursor in solution phases and their CO oxidation activities[J].J Phys Chem C,2008,112:20367.
[16] Vivier L;Duprez D .Ceria-based solid catalysts for organic chemistry[J].Chem Sus Chem,2010,3:654.
[17] Lu X H;Zhai T;Cui H N;Shi J Y Xie S L Huang Y Y Liang C L Tong Y X .Redox cycles promoting photocatalytic hydrogen evolution of CeO2 nanorods[J].J Mate Chem,2011,21:5569.
[18] Celardo I;Pedersen J Z;Traversa E;Ghibelli L .Pharmacological potential of cerium oxide nanoparticles[J].Nanoscale,2011,3:1411.
[19] 吕广明,王艳杰,刘瑞,孙聆东,黄云辉,严纯华.纳米氧化铈的抗氧化生物应用[J].中国科学(化学),2013(10):1309-1321.
[20] Wang Z L;Feng X D .Polyhedral shapes of CeO2 nanoparticles[J].Journal of Physical Chemistry B,2003,107:13563.
[21] Conesa JC. .COMPUTER MODELING OF SURFACES AND DEFECTS ON CERIUM DIOXIDE[J].Surface Science: A Journal Devoted to the Physics and Chemistry of Interfaces,1995(3):337-352.
[22] Sayle DC.;Maicaneanu SA.;Watson GW. .Atomistic models for CeO2(111), (110), and (100) nanoparticles, supported on yttrium-stabilized zirconia[J].Journal of the American Chemical Society,2002(38):11429-11439.
[23] Shoko E;Smith M F;McKenzie R H .Charge distribution near bulk oxygen vacancies in cerium oxides[J].Journal of Physics:Condensed Matter,2010,22:223201.
[24] Spanier J E;Robinson R D;Zhang F;Chan S W Herman I P .Size-dependent properties of CeO2-y nanoparticles as studied by Raman scattering[J].Physical Review B:Condensed Matter,2001,64:245407.
[25] Deshpande S;Patil S;Kuchibhatla SVNT;Seal S .Size dependency variation in lattice parameter and valency states in nanocrystalline cerium oxide[J].Applied physics letters,2005(13):3113-1-3113-3-0.
[26] Sun C T;Xue D F .Size-dependent oxygen storage ability of nano-sized ceria[J].Physical Chemistry Chemical Physics,2013,15:14414.
[27] Xu, JH;Harmer, J;Li, GQ;Chapman, T;Collier, P;Longworth, S;Tsang, SC .Size dependent oxygen buffering capacity of ceria nanocrystals[J].Chemical communications,2010(11):1887-1889.
[28] Hailstone R K;DiFrancesco A G;Leong J G;Allston T D Reed K J .A study of lattice expansion in CeO2 nanoparticles by transmission electron microscopy[J].J Phys Chem C,2009,113:15155.
[29] Lin K S;Chowdhury S .Synthesis,characterization,and application of 1-D cerium oxide nanomaterials:A review[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2010,11:3226.
[30] Sayle T X T;Parker S C;Catlow C R A.Surface oxygen vacancy formation on CeO2 and its role in the oxidation of carbon monoxide[J].Journal of the Chemical Society Chemical Communications,1992(14):977.
[31] Xie X W;Li Y Z;Liu Z Q;Haruta M,Shen W J .Low-temperature oxidation of CO catalysed by Co3O4 nanorods[J].NATURE,2009,458:746.
[32] Pan CS;Zhang DS;Shi LY;Fang JH .Template-free synthesis, controlled conversion, and CO oxidation properties of CeO2 nanorods, nanotubes, nanowires, and nanocubes[J].European journal of inorganic chemistry,2008(15):2429-2436.
[33] Wang X;Jiang Z Y;Zheag B J;Xie Z X Zheng L S .Synthesis and shape-dependent catalytic properties of CeO2 nanocubes and truncated octahedral[J].Cryst Eng Comm,2012,14:7579.
[34] Wang D Y;Kang Y J;Doan-Nguyen V;Chen J Küngas R Wieder N L Bakhmutsky K Gorte R J Murray C B .Synthesis and oxygen storage capacity of two-dimensional ceria nanocrystals[J].ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2011,50:4378.
[35] Liu B;Li Q J;Du X B;Liu B B Yao M G Li Z P Liu R Liu D Zou X Lv H Li D M Zou B Cui T Zou G T .Facile hydrothermal synthesis of CeO2 nanosheets with high reactive exposure surface[J].Journal of Alloys and Compounds,2011,509:6720.
[36] Kobune M;Sato S;Takahashi R .Surface-structure sensitivity of CeO2 for several catalytic reactions[J].Journal of molecular catalysis, A. Chemical,2008(1):10-19.
[37] Sato S;Takahashi R;Sodesawa T;Honda N Shimizu H .Selective dehydration of diols to allylic alcohols catalyzed by ceria[J].CATALYSIS COMMUNICATIONS,2003,4:77.
[38] Satoshi Sato;Ryoji Takahashi;Toshiaki Sodesawa;Naoki Yamamoto .Dehydration of 1,4-butanediol into 3-buten-l-ol catalyzed by ceria[J].Catalysis Communications,2004(8):397-400.
[39] Igarashi A;Ichikawa N;Sato S;Takahashi R;Sodesawa T .Dehydration of butanediols over CeO2 catalysts with different particle sizes[J].Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications,2006(1):50-57.
[40] Sato S;Koizumi K;Nozaki F .Ortho-selective methylation of phenol over CeO2 catalyst[J].Applied Catalysis A:General,1995,133:L7.
[41] Nagashima O;Sato S;Takahashi R;Sodesawa T;Akashi T .Formation of cyclopentanone from dimethyl hexanedioate over CeO2[J].Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications,2006(0):175-180.
[42] Hasan M A;Zaki M I;Pasupulety L .Oxide-catalyzed conversion of acetic acid into acetone:an FTIR spectroscopic investigation[J].Applied Catalysis A:General,2003,243:81.
[43] Lv, J.;Shen, Y.;Peng, L.;Guo, X.;Ding, W. .Exclusively selective oxidation of toluene to benzaldehyde on ceria nanocubes by molecular oxygen[J].Chemical communications,2010(32):5909-5911.
[44] Zhang, Y.;Hou, F.;Tan, Y. .CeO _2 nanoplates with a hexagonal structure and their catalytic applications in highly selective hydrogenation of substituted nitroaromatics[J].Chemical communications,2012(18):2391-2393.
[45] Murugan B;Ramaswamy A V .Defect-site promoted surface reorganization in nanocrystalline ceria for the low-temperature activation of ethylbenzene[J].Journal of the American Chemical Society,2007,129:3062.
[46] Yoshida Y;Arai Y;Kado S;Kunimori K Tomishige K .Direct synthesis of organic carbonates from the reaction of CO2 with methanol and ethanol over CeO2 catalysts[J].Catalysis Today,2006,115:95.
[47] Wang S P;Zhao L F;Wang W;Zhao Y J Zhang G L Ma X B Gong J L .Morphology control of ceria nanocrystals for catalytic conversion of CO2 with methanol[J].Nanoscale,2013,5:5582.
[48] Chaudhary Y S;Panigrahi S;Nayak S;Satpati B Bhattacharjee S Kulkarni N .Facile synthesis of ultra-small monodisperse ceria nanocrystals at room temperature and their catalytic activity under visible light[J].Journal of Materials Chemistry,2010,20:2381.
[49] Khan S B;Faisal M;Rahman M M;Akhtar K Asiri A M Khan A Alamry K A .Effect of particle size on the photocatalytic activity and sensing properties of CeO2 nanoparticles[J].International Journal of Electrochemical Science,2013,8:7284.
[50] Khan, S.B.;Faisal, M.;Rahman, M.M.;Jamal, A. .Exploration of CeO_2 nanoparticles as a chemi-sensor and photo-catalyst for environmental applications[J].Science of the Total Environment,2011(15):2987-2992.
[51] Choudhury B;Chetri P;Choudhury A .Oxygen defects and formation of Ce3+ affecting the photocatalytic performance of CeO2 nanoparticles[J].RSC Adv,2014,4:4663.
[52] Ji P F;Zhang J L;Chen F;Anpo M .Ordered mesoporous CeO2 synthesized by nanocasting from cubic Ia3d Mesoporous MCM-48 Silica:formation,characterization and photocatalytic activity[J].J Phys Chem C,2008,112:17809.
[53] Yan Z J;Wei J J;Yang H X;Liu L Liang H Yang Y Z .Mesoporous CeO2 hollow spheres prepared by Ostwald Ripening and their environmental applications[J].Eur Inorg Chem,2010,2010:3354.
[54] Lu X H;Zheng D Z;Gan J Y;Liu Z Q Liang C L Liu P Tong Y X .Porous CeO2 nanowires/nanowire arrays:electaochemical synthesis and application in water treatment[J].Journal of Materials Chemistry,2010,20:7118.
[55] Sifontes, A.B.;Rosales, M.;Méndez, F.J.;Oviedo, O.;Zoltan, T. .Effect of calcination temperature on structural properties and photocatalytic activity of ceria nanoparticles synthesized employing chitosan as template[J].Journal of nanomaterials,2013(Pt.3):265797-1-265797-11.
[56] Channei D;Inceesungvorn B;Wetchakun;Phanichphant S Nakaruk K Koshy P Sorrell C C .Photocatalytic activity under visible light of Fe-doped CeO2nanoparticles synthesized by flame spray pyrolysis[J].CERAMICS INTERNATIONAL,2012,39:3129.
[57] Ji, Z.;Shen, X.;Li, M.;Zhou, H.;Zhu, G.;Chen, K. .Synthesis of reduced graphene oxide/CeO_2 nanocomposites and their photocatalytic properties[J].Nanotechnology,2013(11):115603-1-115603-9.
[58] Xu J J .Synergy effect on a suspended mixture of ceria and activated carbon for the photocatalytic degradation of phenol[J].Powder Technology,2011,210:1.
[59] Yue L;Zhang X M .Structural characterization and photocatalytic behaviors of doped CeO2 nanoparticles[J].Journal of Alloys and Compounds,2009,475:702.
[60] Chung K H;Park D C .Water photolysis reaction on cerium oxide photocatalysts[J].Catalysis Today,1996,30:157.
[61] Lu X H;Zhai T;Cui H N;Shi J Y Xie S L Huang Y Y Liang C L Tong Y X .Redox cycles promoting photocatalytic hydrogen evolution of CeO2 nanorods[J].Journal of Materials Chemistry,2011,21:5569.
[62] Bamwenda GR.;Arakawa H. .Cerium dioxide as a photocatalyst for water decomposition to O-2 in the presence of Ce-aq(4+) and Fe-aq(3+) species[J].Journal of molecular catalysis, A. Chemical,2000(1/2):105-113.
[63] Korsvik C;Patil S;Seal S;Self W T.Superoxide dismutase mimetic properties exhibited by vacancy engineered ceria nanoparticles[J].Chemistry Communications,2007:1056.
[64] Pirmohamed, T;Dowding, JM;Singh, S;Wasserman, B;Heckert, E;Karakoti, AS;King, JES;Seal, S;Self, WT .Nanoceria exhibit redox state-dependent catalase mimetic activity[J].Chemical communications,2010(16):2736-2738.
[65] Xue Y;Luan Q F;Yang D;Yao X Zhou K B .Direct Evidence for hydroxyl radical scavenging activity of cerium oxide nanoparticles[J].J Phys Chem C,2011,115:4433.
[66] Lee, S.S.;Song, W.;Cho, M.;Puppala, H.L.;Nguyen, P.;Zhu, H.;Segatori, L.;Colvin, V.L. .Antioxidant properties of cerium oxide nanocrystals as a function of nanocrystal diameter and surface coating[J].ACS nano,2013(11):9693-9703.
[67] Perez JM;Asati A;Nath S;Kaittanis C .Synthesis of biocompatible dextran-coated nanoceria with pH-dependent antioxidant properties[J].SMALL,2008,4:552.
[68] Karakoti, AS;Singh, S;Kumar, A;Malinska, M;Kuchibhatla, SVNT;Wozniak, K;Self, WT;Seal, S .PEGylated Nanoceria as Radical Scavenger with Tunable Redox Chemistry[J].Journal of the American Chemical Society,2009(40):14144-14145.
[69] Heckman K L;DeCoteau W;Estevez A;Reed K J Costanzo W Sanford D Leiter J C Clauss J Knapp K Gomez C Mullen P Rathbun E Prime K Marini J Patchefsky J Patchefsky A S Hailstone R K Erlichman J S .Custom cerium oxide nanoparticles protect against a free radical mediated autoimmune degenerative disease in the brain[J].ACS Nano,2013,7:10582.
[70] Chen J P;Patil S;Seal S;McGinnis J F .Rare earth nanoparticles prevent retinal degeneration induced by intracellular peroxides[J].Nature Nanotechnology,2006,1:142.
[71] Kim C K;Kim T;Choi I Y;Soh M Kim D Kim y J Jang H Yang H S Kim J Y Park H K Park S P Park S Yu T Yoon B W Lee S H Hyeon T .Ceria nanoparticles that can protect against ischemic stroke[J].ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2012,51:11039.
[72] Niu J L;Wang K K;Kolattukudy P E .Cerium oxide nanoparticles inhibits oxidative stress and nuclear factor-κB activation in H9c2 cardiomyocytes exposed to cigarette smoke extract[J].Journal of Pharmacology and Experimental Therapeutics,2011,338:53.
[73] Rico C M;Morales M I;McCreary R;Castillo-Michel H Barrios A C Hong J Tafoya A Lee W Y VarelaRamirez A Peralta-Videa J R Gardea-Torresdey J L .Cerium oxide nanoparticles modify the antioxidative stress enzyme activities and macromolecule composition in rice seedlings[J].Environmental Science and Technology,2013,47:14110.
[74] Niu J L;Azfer A;Rogers L M;Wang X H Kolattukudy P E .Cardioprotective effects of cerium oxide nanoparticles in a transgenic murine model of cardiomyopathy[J].Cardiovascular Research,2007,73:549.
[75] Han W Q;Wen W;Hanson J C;Teng X W Marinkovic N Rodriguez J A .One-dimensional ceria as catalyst for the low-temperature water-gas shift reaction[J].J Phys Chem C,2009,113:21949.
[76] Fang C;Zhang D S;Shi L Y;Gao R H Li H R Ye L P Zhang J P .Highly dispersed CeO2 on carbon nanotubes for selective catalytic reduction of NO with NH3[J].Catal Sci Technol,2013,3:803.
[77] Liu Y X;Ding Y;Zhang L C;Gao P X Lei Y .CeO2 nanofibers for in situ O2 and CO sensing in harsh environments[J].RSC Adv,2012,2:5193.
[78] Jasinski P.;Suzuki T.;Anderson HU. .Nanocrystalline undoped ceria oxygen sensor[J].Sensors and Actuators, B. Chemical,2003(1/3):73-77.
[79] Barreca D;Gasparotto A;Maccato C;Maragno C;Tondello E;Comini E;Sberveglieri G .Columnar CeO2 nanostructures for sensor application - art. no. 125502[J].Nanotechnology,2007(12):25502-0.
[80] Liao L;Mai H X;Yuan Q;Lu H B Li J C Liu C Yan C H Shen Z X Yu T .Single CeO2 nanowire gas sensor supported with Pt nanocrystals:gas sensitivity,surface bond states,and chemical mechanism[J].J Phys Chem C,2008,112:9061.
[81] Di Monte R;Kaspar J .Nanostructured CeO2-ZrO2 mixed oxides[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2005(6):633-648.
[82] He H;Dai H X;Ng L H;Wong K W,Au C T .Pd-,Pt-,and Rh-Loaded Ce0.6Zr0 35Y0 05O2 three-way catalysts:an investigation on performance and redox properties[J].Journal of Catalysis,2002,206:1.
[83] Liu X F;Yang H X;Han L;Liu W Zhang C Zhang X Y Wang S P Yang Y Z .Mesoporous-shelled CeO2 hollow nanospheres synthesized by a one-pot hydrothermal route and their catalytic performance[J].Cryst Eng Comm,2013,15:7769.
[84] Wang, X.;Liu, D.;Song, S.;Zhang, H. .Pt@CeO_2 multicore@shell self-assembled nanospheres: Clean synthesis, structure optimization, and catalytic applications[J].Journal of the American Chemical Society,2013(42):15864-15872.
[85] Zhou, HP;Wu, HS;Shen, J;Yin, AX;Sun, LD;Yan, CH .Thermally Stable Pt/CeO2 Hetero-Nanocomposites with High Catalytic Activity[J].Journal of the American Chemical Society,2010(14):4998-4999.
[86] Tang X L;Hao J M;Xu W G;Li J H .Low temperature selective catalytic reduction of NOx with NH3 over amorphous MnOx catalysts prepared by three methods[J].CATALYSIS COMMUNICATIONS,2007,8:329.
[87] Liu, B.;Yu, S.;Wang, Q.;Hu, W.;Jing, P.;Jia, W.;Liu, Y.;Liu, L.;Zhang, J. .Hollow mesoporous ceria nanoreactors with enhanced activity and stability for catalytic application[J].Chemical communications,2013(36):3757-3759.
[88] Si R;Flytzani-Stephanopoulos M .Shape and crystalplane effects of nanoscale ceria on the activity of AuCeO2 catalysts for the water-gas shift reaction[J].Angewandte Chemie,2008,120:2926.
[89] Yu X;Kuai L;Geng B Y .CeO2/rGO/Pt sandwich nanostructure:rGO-enhanced electron transmission between metal oxide and metal nanoparticles for anodic methanol oxidation of direct methanol fuel cells[J].Nanoscale,2012,4:5738.
[90] Menchón, C.;Martín, R.;Apostolova, N.;Victor, V.M.;álvaro, M.;Herance, J.R.;García, H. .Gold nanoparticles supported on nanoparticulate ceria as a powerful agent against intracellular oxidative stress[J].Small,2012(12):1895-1903.
[91] Lu X W;Li X Z;Qian J C;Chen Z G .The surfacrant-assisted synthesis of CeO2 nanowires and their catalytic performance for CO oxidation[J].Powder Technology,2013,239:415.
[92] Yang, Z.;Wei, J.;Yang, H.;Liu, L.;Liang, H.;Yang, Y. .Mesoporous CeO_2 hollow spheres prepared by ostwald ripening and their environmental applications[J].European journal of inorganic chemistry,2010(21):3354-3359.
[93] Jiao Y;Wang F F;Ma X M;Tang Q H Wang K Guo Y M Yang L .Facile one-step synthesis of porous ceria hollow nanospheres for low temperature CO oxidation[J].Microporous and Mesoporous Materials,2013,176:1.
[94] Chen G Z;Zhu F F;Sun X;Sun S X Chen R P .Benign synthesis of ceria hollow nanocrystals by a template-free method[J].Cryst Eng Comm,2011,13:2904.
[95] Liang, X.;Xiao, J.;Chen, B.;Li, Y. .Catalytically stable and active CeO_2 mesoporous spheres[J].Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics,2010(18):8188-8190.
[96] Xing J;Wang H F;Yang C;Wang D Zhao H J Lu G Z Hu P Yang H G .Ceria foam with atomically thin single-crystal walls[J].ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2012,51:3611.
[97] Pan, CS;Zhang, DS;Shi, LY .CTAB assisted hydrothermal synthesis, controlled conversion and CO oxidation properties of CeO2 nanoplates, nanotubes, and nanorods[J].Journal of Solid State Chemistry,2008(6):1298-1306.
[98] Zhou K B;Wang X;Sun X M;Peng Q Li Y D .Enhanced catalytic activity of ceria nanorods from well-defined reactive crystal planes[J].Journal of Catalysis,2005,229:206.
[99] Zhang, J.;Kumagai, H.;Yamamura, K.;Ohara, S.;Takami, S.;Morikawa, A.;Shinjoh, H.;Kaneko, K.;Adschiri, T.;Suda, A. .Extra-low-temperature oxygen storage capacity of CeO2 nanocrystals with cubic facets[J].Nano letters,2011(2):361-364.
[100] Nolan M;Parker S C;Watson G W .The electronic structure of oxygen vacancy defects at the low index surfaces of ceria[J].Surface Science,2005,595:223.
[101] Mai H X;Sun L D;Zhang Y W;Si R Feng W Zhang H P Liu H C Yan C H .Shape-selective synthesis and oxygen storage behavior of ecria nanopolyhedra,nanorods,and nanocubes[J].Journal of Physical Chemistry B,2005,109:24380.
[102] Tana;Milin Zhang;Juan Li .Morphology-dependent redox and catalytic properties of CeO2 nanostructures: Nanowires, nanorods and nanoparticles[J].Catalysis Today,2009(1/2):179-183.
[103] Wu, Z.;Li, M.;Howe, J.;Meyer, H.M.;Overbury, S.H. .Probing defect sites on CeO_2 nanocrystals with well-defined surface planes by raman spectroscopy and O_2 adsorption[J].Langmuir: The ACS Journal of Surfaces and Colloids,2010(21):16595-16606.
[104] Wu Z L;Li M J;Overbury S H .On the structure dependence of CO oxidation over CeO2 nanocrystals with well-defined surface planes[J].Journal of Catalysis,2012,285:61.
[105] Shen Y;Li L C;Yang Z H;Li Z Lu X H .Shapecontrollable synthesis of CeO2 particles in CO2-expanded ethanol towards CO oxidation application[J].RSC Adv,2013,3:5302.
[106] Ho, CM;Yu, JC;Kwong, T;Mak, AC;Lai, SY .Morphology-controllable synthesis of mesoporous CeO2 nano- and microstructures[J].Chemistry of Materials,2005(17):4514-4522.
[107] Campbell C T;Peden C H F .Oxygen vacancies and catalysis on ceria surfaces[J].SCIENCE,2005,309:713.
[108] Liu, XW;Zhou, KB;Wang, L;Wang, BY;Li, YD .Oxygen Vacancy Clusters Promoting Reducibility and Activity of Ceria Nanorods[J].Journal of the American Chemical Society,2009(9):3140-3141.
[109] Lawrence, N.J.;Brewer, J.R.;Wang, L.;Wu, T.-S.;Wells-Kingsbury, J.;Ihrig, M.M.;Wang, G.;Soo, Y.-L.;Mei, W.-N.;Cheung, C.L. .Defect engineering in cubic cerium oxide nanostructures for catalytic oxidation[J].Nano letters,2011(7):2666-2671.
[110] Sun Y F;Liu Q H;Gao S;Cheng H Lei F C Sun Z H Jiang Y Su H B Wei S Q Xie Y .Pits confined in ultrathin cerium (Ⅳ) oxide for studying catalytic centers in carbon monoxide oxidation[J].Nat Commun,2013,4:2899.
[111] Ke, J.;Xiao, J.-W.;Zhu, W.;Liu, H.;Si, R.;Zhang, Y.-W.;Yan, C.-H. .Dopant-induced modification of active site structure and surface bonding mode for high-performance nanocatalysts: CO oxidation on capping-free (110)-oriented CeO_2:Ln (Ln = La-Lu) nanowires[J].Journal of the American Chemical Society,2013(40):15191-15200.
[112] Kuntaiah K;Sudarsanam P;Reddy B M;Vinu A .Nanocrystalline Ce1-x Smx O2-δ (x =0.4) solid solutions:structural characterization versus CO oxidation[J].RSC Adv,2013,3:7953.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%