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催化学报  2011 

单斜BiVO4可见光催化降解甲基橙的形貌效应

DOI: 10.1016/S1872-2067(10)60215-X, PP. 939-949

Keywords: 醇-水热法,形貌相依性质,可见光响应催化剂,单斜钒酸铋,甲基橙,降解

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Abstract:

?以硝酸铋和偏钒酸铵为无机源,NaOH为pH值调节剂,三嵌段共聚物P123为表面活性剂,采用醇-水热法制备了多种形貌的单斜BiVO4.利用X射线衍射、N2吸脱附、扫描电子显微镜、X射线光电子能谱和紫外可见光漫反射等技术表征了其物化性质,并考察了这些BiVO4样品在可见光照射下降解甲基橙的催化活性.结果表明,表面活性剂和溶液pH值对所得BiVO4产物的粒子形貌影响很大.在醇-水热温度为180oC,pH值为2,7或10时,可分别制得多孔球状、花状和片状BiVO4;而采用P123作表面活性剂,在醇-水热温度为180oC且pH为2时可制得棒状BiVO4.BiVO4样品粒子形貌的不同导致它们的比表面积、表面氧空位密度和(040)晶面暴露率不同,其中以棒状BiVO4样品具有最高的比表面积、氧空位密度和(040)晶面暴露率以及最低的带隙能,使其对甲基橙降解表现出最好的光催化活性.可以认为,BiVO4样品对甲基橙的光催化降解反应活性存在形貌效应,棒状形貌有利于提高BiVO4的光催化性能.

References

[1]  u T, Steele B C H. Solid State Ionics, 1986, 21: 339
[2]  okunaga S, Kato H, Kudo A. Chem Mater, 2001, 13: 4624
[3]  Xi G C, Ye J H. Chem Commun, 2010, 46: 1893
[4]  Wang D E, Jiang H F, Zong X, Xu Q, Ma Y, Li G L, Li C. Chem Eur J, 2011, 17: 1275
[5]  张妍, 于建强, 工藤昭彦, 赵修松. 催化学报 (Zhang Y, Yu J Q, Kudo A, Zhao X S. Chin J Catal), 2008, 29: 624
[6]  Ge L. Mater Chem Phys, 2008, 107: 465
[7]  索静, 柳丽芬, 杨凤林. 催化学报 (Suo J, Liu L F, Yang F L. Chin J Catal), 2009, 30: 323
[8]  Meng X, Zhang L, Dai H X, Zhao Z X, Zhang R Z, Liu Y X. Mater Chem Phys, 2011, 125: 59
[9]  Ke D N, Peng T Y, Ma L, Cai P, Dai K. Inorg Chem, 2009, 48: 4685
[10]  Kudo A, Omori K, Kato H. J Am Chem Soc, 1999, 121: 11459
[11]  Zhang A P, Zhang J Z, Cui N Y, Tie X Y, An Y W, Li L J. J Mol Catal A, 2009, 304: 28
[12]  Li L Z, Yan B. J Alloys Compd, 2009, 476: 624.
[13]  Zhou L, Wang W Z, Xu H L. Cryst Growth Des, 2008, 8: 728
[14]  Xu A W, Antonietti M, C?lfen H, Fang Y P. Adv Funct Mater, 2006, 16: 903
[15]  Chen L M, Liu Y N, Lu Z G, Zeng D M. J Colloid Interface Sci, 2006, 295: 440
[16]  Gong Q, Qian X F, Ma X D, Zhu Z K. Cryst Growth Des, 2006, 6: 1821
[17]  Xu H, Li H M, Wu C D, Chu J Y, Yan Y S, Shu H M, Gu Z. J Hazard Mater, 2008, 153: 877
[18]  Liu W, Lai S Y, Dai H X, Wang S J, Sun H Z, Au C T. Catal Lett, 2007, 113: 147
[19]  irota K, Komatsu G, Yamashita M, Takemura H, Yama-guchi O. Mater Res Bull, 1992, 27: 823
[20]  iu W, Yu Y Q, Cao L X, Su G, Liu X Y, Zhang L, Wang Y G. J Hazard Mater, 2010, 181: 1102
[21]  hang X, Ai Z H, Jia F L, Zhang L Z, Fan X X, Zou Z G. Mater Chem Phys, 2007, 103: 162
[22]  leight A W, Chen H Y, Ferretti A, Cox D E. Mater Res Bull, 1979, 14: 1571
[23]  u J Q, Zhang Y, Kudo A. J Solid State Chem, 2009, 182: 223
[24]  eves M C, Trindade T. Thin Solid Films, 2002, 406: 93
[25]  ayama K, Nomura A, Zou Z G, Abe R, Abe Y, Arakawa H. Chem Commun, 2003: 2908
[26]  Zhou L, Wang W Z, Liu S W, Zhang L S, Xu H L, Zhu W. J Mol Catal A, 2006, 252: 120
[27]  Yu J Q, Kudo A. Adv Funct Mater, 2006, 16: 2163
[28]  Sun S M, Wang W Z, Zhou L, Xu H L. Ind Eng Chem Res, 2009, 48: 1735
[29]  Zhang L, Chen D R, Jiao X L. J Phys Chem B, 2006, 110: 2668
[30]  Li G R, Hu T, Pan G L, Yan T Y, Gao X P, Zhu H Y. J Phys Chem C, 2008, 112: 11859
[31]  Mclaren A, Valdes-Solis T, Li G Q, Tsang S C. J Am Chem Soc, 2009, 131: 12540
[32]  Yamazoe N, Teraoka Y, Seiyama T. Chem Lett, 1981: 1767
[33]  Zhang C, Zhu Y F. Chem Mater, 2005, 17: 3537
[34]  Li H B, Liu G C, Duan X C. Mater Chem Phys, 2009, 115: 9
[35]  Zhang A P, Zhang J Z. Appl Surf Sci, 2010, 256: 3224
[36]  Yu J G, Xiong J F, Cheng B, Liu S W. Appl Catal B, 2005, 60: 211
[37]  Mohajerani M S, Lak A, Simchi A. J Alloys Compd, 2009, 485: 616
[38]  Lucky R A, Charpentier P A. Appl Catal B, 2010, 96: 516
[39]  Wang Y X, Li X Y, Wang N, Quan X, Chen Y Y. Sep Purif Technol, 2008, 62: 727

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