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可见光活性CuMOF/CdS复合光催化剂的合成

Synthesis of CuMOF/CdS composite photocatalysts with visible-light activity
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摘要 以二水合醋酸镉、硫代乙酰胺、乙二胺为原料,采用水热法合成了CdS纳米颗粒;以三水合硝酸铜、均苯三甲酸为原料,采用溶剂热法合成了CuMOF。通过对2种晶体超声分散、混合制备CuMOF/CdS复合光催化剂,利用XRD、SEM、UV-Vis DRS及FT-IR分析方法对合成的CuMOF/CdS复合光催化剂进行表征。以亚甲基蓝为模拟的待降解有机污染物,考察了CuMOF复合量对光催化降解效率的影响。结果表明,当CuMOF与CdS质量比为1∶1时,CuMOF/CdS光催化剂对亚甲基蓝(MB)溶液表现了最佳的光催化降解效果;与单纯CdS和CuMOF晶体相比,其在相同条件下对MB的光催化降解效率分别提高了502%和287%。 CuMOF and CdS crystals are synthesized by solvothermal and hydrothermal methods,respectively.They are dispersed and mixed under ultrasonic oscillation to prepare CuMOF/CdS composite photocatalyst that is characterized by means of XRD,SEM,UV-Vis DRS and FT-IR.The effect of the mass fraction of CuMOF on photocatalytic degradation efficiency of the catalyst is investigated through using methylene blue as a simulated organic pollutant to be degraded.Results indicate that CuMOF/CdS photocatalyst exhibits the best photocatalytic degradation efficiency for methylene blue solution when the mass fraction ratio of CuMOF to CdS is 1∶1.Under the same conditions,the photocatalytic degradation rate of CuMOF/CdS catalyst for methylene blue is 502%and 287%higher than that of CdS crystal or CuMOF crystal,respectively.
作者 杨烨民 董如林 陈智栋 YANG Ye-min;DONG Ru-lin;CHEN Zhi-dong(Jiangsu Key Laboratory of Green Catalytic Materials and Technology,School of Petrochemical Engineering,Changzhou University,Changzhou 213164,China)
出处 《现代化工》 CAS CSCD 北大核心 2023年第7期149-152,158,共5页 Modern Chemical Industry
基金 江苏省绿色催化材料与技术实验室开放课题基金资助项目(BM2012110)。
关键词 CDS CuMOF 异质结 光催化活性 CdS CuMOF heterojunction photocatalytic activity
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  • 1严佳佳,王坤,许晖,钱静,刘巍,杨兴旺,李华明.CdS/石墨烯纳米复合物的可见光催化效率和抗光腐蚀行为(英文)[J].催化学报,2013,34(10):1876-1882. 被引量:10
  • 2臧金鑫,赵高凌,韩高荣.CdS纳米粒子的水热微乳法制备[J].无机化学学报,2006,22(5):917-920. 被引量:18
  • 3Duan X F, Huang Y, Agarwal R, et al. Single-nanowire electrically driven lasers [J]. Nature, 2003, 421(6920): 241-245.
  • 4Anil K, Vint K. Self-assemblies from RNA-templated colloidal CdS nanostructures [J]. J Phys Chem C, 2008, 112(10) :3633- 3640.
  • 5Chen S, Zhu J, Shen Y F, et al. Synthesis of nanocrystal-polymer transparent hybrids via polyurethane matrix grafted onto functionalized CdS nanocrystals[J]. Langmuir, 2007, 23(2):850-854.
  • 6Jura S J, Upendra A J, Jae S L. Solvothermal synthesis of CdS nanowires for photocatalytic hydrogen and electricity production [J]. J PhysChemC, 2007, 111 (35):13280-13287.
  • 7Johnson B J, Wolf J H, Zalusky A S, et al. Template syntheses of polypyrrole nanowires and CdS nanoparticles in porous polymer monoliths[J]. Chem Mater, 2004, 16 (15):2909- 2917.
  • 8Barrele C J, Wu Y, Bell D C, et al. Synthesis of CdS and ZnS nanowires using single-source molecular precursors [J]. J Am Chem Soc, 2003,125(38): 11498- 11499.
  • 9Wang F, Xu G, Zhang ZH, et al. Synthesis of monodisperse CdS nanospheres in an inverse microemulsion system formed with a dendritic polyether copolymer [J]. European Journal of Inorganic Chemistry, 2006, 2006(1) : 109-114.
  • 10Brus I.E. Electronic wave functions in semiconductor clusters: Experiment and theory[J]. J Phys Chem, 1986, 90(12): 2555-2560.

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