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Nd-doped TiO2 (NT) photocatalysts with different contents of Nd were synthesized by sol-gel method. Then sulfated Nd-doped TiO2 (SNT) solid superacid photocatalysts were prepared by an incipient wetness impregnation technique. The photocata-lytic activity of catalysts was evaluated by the photodegradation of methylene blue under visible light irradiation. Analytical results demonstrated that Nd doping inhibited the growth of TiO2 crystallite and enhanced the thermal stability of anatase TiO2. Meanwhile, sulfate ions modification increased the specific surface area of samples. In addition, the optical absorption edges of SNT photocata-lysts shifted to longer wavelength compared with the undoped TiO2. Such SNT with Nd dosage of 0.25 at.%exhibited the highest photocatalytic activity in the degradation of methylene blue upon irradiation with visible light.

参考文献

[1] Gole J L, Stout J D, Burda C, Lou Y B, Chen X B. Highly efficient formation of visible light tunable TiO2-xNx photo-catalysts and their transformation at the nanoscale. J. Phys. Chem. B, 2004, 108:1230.,2004.
[2] Baia L, Diamandescu L, Barbu-Tudoran L, Peterd A, Melin-tea G, Danciud V, Baia M. Efficient dual functionality of highly porous nanocomposites based on TiO2 and noble metal particles. J. Alloys Compd., 2011, 509:2672.,2011.
[3] Higarashi M M, Jardim W F. Remediation of pesticide contaminated soil using TiO2 mediated by solar light. Catal. Today, 2002, 76:201.,2002.
[4] Ramacharyulu P V R K, Prasad G K, Ganesan K, Singh B. Photocatalytic decontamination of sulfur mustard using ti-tania nanomaterials. J. Mol. Catal. A:Chem., 2012, 353-354:132.,2012.
[5] An T C, Zhang W B, Xiao X M, Sheng G Y, Fu J M, Zhu X H. Photoelectrocatalytic degradation of quinoline with a novel three-dimensional electrode-packed bed photocata-lytic reactor. J. Photochem. Photobiol. A:Chem., 2004, 161:233.,2004.
[6] Wang C, Ao Y H, Wang P F, Hou J, Qian J. Preparation of cerium and nitrogen co-doped titania hollow spheres with enhanced visible light photocatalytic performance. Powder Technol., 2011, 210:203.,2011.
[7] Liu J J, Qin W, Zuo S L, Yu Y C, Hao Z P. Solvothermal-induced phase transition and visible photocatalytic activity of nitrogen-doped titania. J. Hazard. Mater., 2009, 163:273.,2009.
[8] Rengaraj S, Venkataraj S, Yeon J W, Kim Y H, Li X Z, Pan G K H. Preparation, characterization and application of Nd-TiO2 photocatalyst for the reduction of Cr(VI)under UV light illumination. Appl. Catal., B:Environ., 2007, 77:157.,2007.
[9] Liang T, Ding S M, Song W C, Chong Z Y, Zhang C S, Li H T. A review of fractionations of rare earth elements in plan. J. Rare Earths, 2008, 26:7.,2008.
[10] Bolare A, Pai M, Athawale A A. Surface modified Nd doped TiO2 nanoparticles as photocatalysts in UV and so-lar light irradiation. Sol. Energy, 2013, 91:111.,2013.
[11] Khataee A R, Hosseini M, Hanifehpour Y, Safarpour M. Hydrothermal synthesis and characterization of Nd-doped ZnSe nanoparticles with enhanced visible light photocata-lytic activity. Res. Chem. Intermed., 2014, 40:495.,2014.
[12] Zhang P L, Yin S, Sekino T, Lee S W, Sato T. Nb and N co-doped TiO2 for a high-performance deNOx photocata-lyst under visible LED light irradiation. Res. Chem. Inter-med, 2013, 39:1509.,2013.
[13] Nasir M, Bagwasi S, Jiao Y C, Chen F, Tian B Z, Zhang J L. Characterization and activity of the Ce and N co-doped TiO2 prepared through hydrothermal method. Chem. Eng. J., 2014, 236:388.,2014.
[14] Lan X, Wang L Z, Zhang B Y, Tian B Z, Zhang J L. Preparation of lanthanum and boron co-doped TiO2 by modified sol-gel method and study their photocatalytic ac-tivity. Catal. Today, 2013, 224:163.,2013.
[15] Václav S, Snejana B J, Nataliya M. Preparation and photo-catalytic activity of rare earth doped TiO2 nanoparticles. Mater. Chem. Phys., 2009, 114:217.,2009.
[16] Meng Z, Zhu L, Choi J G, Park C Y, Oh W C. Rare earth oxide-treated fullerene and titania composites with en-hanced photocatalytic activity for the degradation of me-thylene blue. Chin. J. Catal., 2011, 32:1457.,2011.
[17] Bagwasi S, Tian B Z, Zhang J L, Nasir M. Synthesis, characterization and application of bismuth and boron co-doped TiO2:a visible light active photocatalyst. Chin. J. Catal., 2013, 217:108.,2013.
[18] Nasir M, Xi Z H, Xing M Y, Zhang J L, Chen F, Tian B Z, Bagwasi S. Study of synergistic effect of Ce-and S-codoping on the enhancement of visible-light photocata-lytic activity of TiO2. J. Phys. Chem. C, 2013, 117:9520.,2013.
[19] Krishnakumar B, Swaminathan M. A recyclable and highly effective sulfated TiO2-P25 for the synthesis of quinoxa-line and dipyridophenazine derivatives at room tempera-ture. J. Organomet. Chem., 2010, 695:2572.,2010.
[20] Krishnakumar B, Velmurugan R, Jothivel S, Swaminathan M. An efficient protocol for the green synthesis of quinox-aline and dipyridophenazine derivatives at room tempera-ture using sulfated titania. Catal. Commun., 2010, 11:997.,2010.
[21] Jothivel S, Velmurugan R, Selvam K, Krishnakumar B, Swaminathan M. Preparation, characterization and photo-catalytic activity of acidic sulfated nano titania for the degradation of reactive orange 4 under UV light. Sep. Pu-rif. Technol., 2011, 77:245.,2011.
[22] Krishnakumar B, Swaminathan M. A convenient method for the N-formylation of amines at room temperature using TiO2-P25 or sulfated titania. J. Mol. Catal. A, 2010, 334:98.,2010.
[23] Hassan M S, Amna T, Yang O, Kimd H C, Khil M S. TiO2 nanofibers doped with rare earth elements and their photocatalytic activity. Ceram. Int., 2012, 38:5925.,2012.
[24] Krishnakumar B, Swaminathan M. An expeditious and sol-vent free synthesis of azine derivatives using sulfated ana-tase-titania as a novel solid acid catalyst. Catal. Commun., 2011, 16:50.,2011.
[25] Krishnakumar B, Velmurugan R, Swaminathan M. TiO2-SO42-as a novel solid acid catalyst for highly efficient, solvent free and easy synthesis of chalcones under micro-wave irradiation. Catal. Commun., 2011, 12:375.,2011.
[26] Man K L, Keat T L, Abdul R M. Sulfated tin oxide as solid superacid catalyst for transesterification of waste cookingoil:An optimization study. Appl. Catal., B:Environ., 2009, 93:134.,2009.
[27] Parida K M, Sahu N, Biswal N R, Naik B, Pradhan A C. Preparation, characterization, and photocatalytic activity of sulfate-modified titania for degradation of methyl orange under visible light. J. Colloid Interface Sci., 2008, 31:231.,2008.
[28] Hu Y, Tsai H L, Huang C L. Effect of brookite phase on the anatase-rutile transition in titania nanoparticles. J. Eur. Ceram. Soc., 2003, 23:691.,2003.
[29] Shi H X, Zhang T Y, An T C, Li B, Wang X. Enhancement of photocatalytic activity of nano-scale TiO2 particles co-doped by rare earth elements and heteropolyacids. J. Col-loid Interface Sci., 2012, 38:121.,2012.
[30] 杨学灵,朱丽,杨乐敏,周武艺,徐悦华.硅胶负载掺钕TiO2的制备及其光催化性能[J].中国有色金属学报(英文版),2011(02):335-339.
[31] Park Y M, Lee D W, Kim D K, Lee J S, Lee K Y. The het-erogeneous catalyst system for the continuous conversion of free fatty acids in used vegetable oils for the production of biodiesel. Catal. Today, 2008, 131:238.,2008.
[32] Li H X, Li G S, Zhu J, Wan Y. Preparation of an active SO42-/TiO2 photocatalyst for phenol degradation under supercritical conditions. J. Mol. Catal. A:Chem., 2005, 226:93.,2005.
[33] Yang Y, Zhong H, Tian C X, Jiang Z Q. Single-step prepa-ration, characterization and photocatalytic mechanism of mesoporous Fe-doped sulfated titania. Surf. Sci., 2011, 605:1281.,2011.
[34] Yang Y, Tian C X. Effects of calcining temperature on photocatalytic activity of Fe-doped sulfated titania. Photochem. Photobiol., 2012, 88:816.,2012.
[35] Mohamed M M, Mater A M. Characterization, adsorption and photocatalytic activity of vanadium-doped TiO2 and sulfated TiO2(rutile)catalysts:Degradation of methylene blue dye. J. Mol. Catal. A:Chem., 2006, 255:53.,2006.
[36] Yuan M Q, Zhang J, Yan S, Luo G X, Xu Q, Wang X, Li C. Effect of Nd2O3 addition on the surface phase of TiO2 and photocatalytic activity studied by UV Raman spec-troscopy. J. Alloys Compd., 2011, 509:6227.,2011.
[37] de la Cruz Romero D, Torres Torres G, Arévalo J C, Go-mez R, Aguilar-Elguezabal A. Synthesis and characteriza-tion of TiO2 doping with rare earths by sol-gel method:photocatalytic activity for phenol degradation. J. Sol-Gel Sci. Technol., 2010, 56:219.,2010.
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