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首次使用真菌纤维为模板,利用溶剂热法,以CdCl2和硫脲为原料,在不同温度条件下制备真菌纤维/硫化镉复合纤维材料.通过 SEM、FT-IR、XRD等表征手段对所制备的真菌纤维/硫化镉复合纤维材料进行物化结构分析.结果发现,真菌纤维通过自身表面含有的活性官能团与金属离子发生配位、协调等作用,使CdS颗粒能够在真菌纤维表面稳定成核并生长成型,得到了分布均匀、晶粒尺寸为20 nm 左右、球形的CdS纳米颗粒.通过对苯酚的光降解实验表明,在150℃条件下制备的真菌纤维/硫化镉复合纤维材料对苯酚的光降解率可高达99.23%,真菌纤维/硫化镉复合纤维材料具有优异的光催化降解性能.

In this paper,we firstly used the fungus fiber as a template,and adopted the solvothermal method for preparing the fungus fiber/CdS composites fiber material under different temperature conditions with CdCl2 and thiourea as raw materials.The fungus fiber/CdS composite fiber material that had been obtained was character-ized by scanning electron microscopy (SEM),fourier transformed infrared (FT-IR),and X-ray diffraction (XRD).The results indicated that the spherical CdS nanoparticles were homogeneous distribution,with the size of the grain was about 20 nm,which were stable in the course of nucleation and grew on the surface of fungus cellulose due to the coordination effect with active group.The investigation of photocatalytic degradation experi-ment of phenol showed that the phenol photodegradation rate of fungus fiber/CdS composite fiber material pre-pared under the 150 ℃ could reach to 99.23%,demonstrating the excellent photocatalytic degradation property.

参考文献

[1] 闫世成,罗文俊,李朝升,邹志刚.新型光催化材料探索和研究进展[J].中国材料进展,2010(01):1-9.
[2] 谢立进,马峻峰,赵忠强,田华,周军.半导体光催化剂的研究现状及展望[J].硅酸盐通报,2005(06):80-84.
[3] K.G. Kanade;Jin-OoK Baeg;U.P. Mulik;D.P. Amalnerkar;B.B. Kale .Nano-CdS by polymer-inorganic solid-state reaction: Visible light pristine photocatalyst for hydrogen generation[J].Materials Research Bulletin: An International Journal Reporting Research on Crystal Growth and Materials Preparation and Characterization,2006(12):2219-2225.
[4] 王伯勇,魏丰华,刘娅琳,崔高峰,杜高英,王清,王亚娟,买光昕.TiO2、ZnO和CdS 的光催化甲基橙脱色比较[J].工业水处理,2002(04):40-42.
[5] 杜娟,李越湘,彭绍琴,吕功煊,李树本.用水热、溶剂热方法制备纳米CdS粒子及其光催化性能[J].功能材料,2005(10):1603-1606.
[6] 赵伟强,冉义江,庞清宇,段莉梅.立方相硫化镉纳米材料的制备与光催化性能研究[J].内蒙古民族大学学报:自然科学版,2012(03):272-274.
[7] 闫俊萍,张中太,唐子龙,罗绍华.半导体基纳米复合材料光催化研究进展[J].无机材料学报,2003(05):980-988.
[8] 黄占华,张斌,邹莉,张立君,胡晓峰,于欣.一种潜在新型材料--真菌纤维的晶体结构表征[J].功能材料,2012(07):940-943,948.
[9] Xin Li;Shiyan Chen;Weili Hu .In situ synthesis of CdS nanoparticles on bacterial cellulose nanofibers[J].Carbohydrate Polymers: Scientific and Technological Aspects of Industrially Important Polysaccharides,2009(4):509-512.
[10] Dongping Sun;Jiazhi Yang;Xin Wang .Bacterial cellulose/TiO2 hybrid nanofibers prepared by the surface hydrolysis method with molecular precision[J].Nanoscale,2010(2):287-292.
[11] 杨晔,孙振世,陈英旭.纳米TiO2薄膜光催化降解苯酚和氯代苯酚的研究[J].太阳能学报,2004(01):63-67.
[12] Jiazhi Yang;Junwei Yu;Jun Fan;Dongping Sun;Weihua Tang;Xuejie Yang .Biotemplated preparation of CdS nanoparticles/bacterial cellulose hybrid nanofibers for photocatalysis application[J].Journal of hazardous materials,2011(1/2):377-383.
[13] 唐爱民,钱荣敬.原位复合制备纤维素基CdS纳米复合材料及其表征[J].功能材料,2010(11):2034-2037.
[14] Ladizhansky V;Hodes G;Vega S .Surface properties of precipitated CdS nanoparticles studied by NMR[J].Journal of Physical Chemistry B,1998,102:8505-8513.
[15] Sasikala G.;Subramanian C.;Thilakan P. .Modification in the chemical bath deposition apparatus, growth and characterization of CdS semiconducting thin films for photovoltaic applications[J].Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion,2000(3):275-293.
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