Tb掺杂BiOCl光催化剂的制备及其光催化性能研究

李晓芳1, 郭宇煜2, 张煜星1, 黄凤萍2, 赵冬冬1, 李鑫1

化工新型材料 ›› 2019, Vol. 47 ›› Issue (8) : 143 -147.

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化工新型材料 ›› 2019, Vol. 47 ›› Issue (8) : 143-147.
科学研究

Tb掺杂BiOCl光催化剂的制备及其光催化性能研究

    李晓芳1, 郭宇煜2, 张煜星1, 黄凤萍2, 赵冬冬1, 李鑫1
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Preparation,property and mechanism of Tb/BiOCl photocatalyst

  • Li Xiaofang1, Guo Yuyu2, Zhang Yuxing1, Huang Fengping2, Zhao Dongdong1, Li Xin1
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摘要

以五水合硝酸铋、氯化钾、六水合硝酸铽、乙二醇为原料,采用溶剂热法成功制备Tb掺杂氯氧化铋(BiOCl)光催化剂。利用X射线粉末衍射仪、扫描电子显微镜、紫外-可见-近红外光谱仪对样品进行了表征,同时研究了Tb掺杂量对Tb/BiOCl光催化性能的影响,探讨了其可能的光催化机理。结果表明:掺杂Tb可以使BiOCl禁带宽度收窄,同时将光响应区域部分扩展为可见光区;掺杂Tb可以有效地捕捉被激发的电子,从而使降电子和空穴复合的几率减小,Tb掺杂量为1%(摩尔分数)的Tb/BiOCl光催化剂表现出最佳的光催化性能,可见光照射120min后对甲基橙降解率达到了75%,光催化循环实验进行5次后,光催化剂的稳定性仍较高。

Abstract

Terbium(Tb) doped BiOCl photocatalyst was successfully prepared by solvothermal method using bismuth nitrate pentahydrate,potassium chloride,terbium nitrate hexahydrate and ethylene glycol as raw materials.The samples were characterized by XRD,SEM,and DRS.The effect of Tb doping amount on the photocatalytic activity of BiOCl was studied and the possible photocatalytic mechanism was also discussed.The results showed that the doped Tb can effectively narrow the band gap of BiOCl and extended the light response region to visible light region.Doped Tb can effectively capture the excited electrons,thus reducing the probability of photo-generated electrons and holes recombination.Tb/BiOCl photocatalyst with 1% (mole fraction)Tb doping showed the best photocatalytic performance.After 120min visible light irradiation,the degradation rate of methyl orange reached 75%.After five photocatalytic cycles,the stability of photocatalyst was still high.

关键词

/ 氯氧化铋 / 溶剂热法 / 光催化

Key words

terbium / BiOCl / solvothermal method / photocatalysis

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Tb掺杂BiOCl光催化剂的制备及其光催化性能研究[J]. 化工新型材料, 2019, 47(8): 143-147 DOI:

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参考文献

[1] Zhang L,Wang W,Sun S,et al.Selective transport of electron and hole among {001} and {110} facets of BiOCl for pure water splitting[J].Applied Catalysis B:Environmental,2015,162:470-474.
[2] Li J,Cai L,Shang J,et al.Giant enhancement of internal electric field boosting bulk charge separation for photocatalysis[J].Advanced Materials,2016,28(21):4059-4064.
[3] Zhang X,Wang X B,Wang L W,et al.Synthesis of a highly efficient BiOCl single-crystal nanodisk photocatalyst with exposing {001} facets[J].ACS Applied Materials & Interfaces,2014,6(10):7766-7772.
[4] Jiang J,Zhao K,Xiao X,et al.Synthesis and facet-dependent photoreactivity of BiOCl single-crystalline nanosheets[J].Journal of the American Chemical Society,2012,134(10):4473-4476.
[5] Zhang W,Li X,Jia G,et al.Preparation,characterization,and photocatalytic activity of boron and lanthanum co-doped TiO2[J].Catalysis Communications,2014,45(5):144-147.
[6] Huang F,Wang S,Zhang S,et al.Synthesis of praseodymium-doped TiO2 nanocatalysts by sol-microwave and their photocatalytic activity study[J].Bulletin of the Korean Chemical Society,2014,35(5):2512-2518.
[7] Sin J C,Lam S M,Lee K T,et al.Fabrication of erbium-doped spherical-like ZnO hierarchical nanostructures with enhanced visible light-driven photocatalytic activity[J].Materials Letters,2013,91(3):1-4.
[8] Khatamian M,Khandar A A,Divband B,et al.Heterogeneous photocatalytic degradation of 4-nitrophenol in aqueous suspension by Ln(La3+,Nd3+ or Sm3+) doped ZnO nanoparticles[J].Journal of Molecular Catalysis A:Chemical,2012,365(12):120-127.
[9] Wang Y,Li Y,Bai X,et al.Facile synthesis of Y-doped graphitic carbon nitride with enhanced photocatalytic perfor-mance[J].Catalysis Communications,2016,84(5):179-182.
[10] Luo X,Zhu G,Peng J,et al.Enhanced photocatalytic activity of Gd-doped porous β-Bi2O3 photocatalysts under visible light irradiation[J].Applied Surface Science,2015,351(1):260-269.
[11] Liu Z S,Liu Z L,Liu J L,et al.Enhanced photocatalytic performance of Er-doped Bi24O31Br10:facile synthesis and photocatalytic mechanism[J].Materials Research Bulletin,2016,76:256-263.
[12] Wang D,Shen H,Guo L,et al.La and F co-doped Bi2MoO6 architectures with enhanced photocatalytic performance via synergistic effect[J].RSC Advances,2016,6(75):71052-71060.
[13] Chen Z,Wu Y,Wang X,et al.Ferromagnetism and enhanced photocatalytic activity in Nd doped BiFeO3 nanopowders[J].Journal of Materials Science:Materials in Electronics,2015,26(12):9929-9940.
[14] Sarkar A,Ghosh A B,Saha N,et al.Enhanced photocatalytic activity of Eu-doped Bi2S3 nanoflowers for degradation of organic pollutants under visible light illumination[J].Catalysis Science & Technology,2015,5(8):4055-4063.

基金资助

西京学院校级科研基金项目(XJ180102)

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