制备了Fe(bpy)32+负载偕胺肟改性聚丙烯腈(PAN)纤维非均相Fenton催化剂,并通过配位作用将Cu2+引入该催化剂,制备了双金属负载改性PAN纤维催化剂(Cu Fe B-PAN)。并对该催化剂进行FTIR光谱、UV-Vis DRS谱图、光催化活性分析,探讨并分析了...制备了Fe(bpy)32+负载偕胺肟改性聚丙烯腈(PAN)纤维非均相Fenton催化剂,并通过配位作用将Cu2+引入该催化剂,制备了双金属负载改性PAN纤维催化剂(Cu Fe B-PAN)。并对该催化剂进行FTIR光谱、UV-Vis DRS谱图、光催化活性分析,探讨并分析了不同因素对光催化活性的影响。结果表明,Cu2+的引入拓宽了催化剂的可见光吸收范围;Cu2+的引入明显提高了催化剂的光催化活性,而且拓宽了p H适用范围;Cu2+的引入提高了催化剂对可见光的利用效率。展开更多
Tris(bipyridine)ruthenium(Ⅱ)(Ru(bpy) 2+ 3) was incorporated into mesoporous silicate MCM 48. X ray diffraction and emission spectroscopy were used to investigate the products, Ru(bpy) 2+ 3/MCM 48. The emission spectr...Tris(bipyridine)ruthenium(Ⅱ)(Ru(bpy) 2+ 3) was incorporated into mesoporous silicate MCM 48. X ray diffraction and emission spectroscopy were used to investigate the products, Ru(bpy) 2+ 3/MCM 48. The emission spectra show that the wavelength of maximum intensity( λ max ) for Ru(bpy) 2+ 3 increases with the increase of Ru(bpy) 2+ 3 loading level in MCM 48. The photoluminescent property of Ru(bpy) 2+ 3/MCM 48 was investigated. It was observed that the wavelength maximum intensity( λ max ) for Ru(bpy) 2+ 3/MCM 48 was red shifted when acetone vapor was introduced. [WT5HZ]展开更多
文摘制备了Fe(bpy)32+负载偕胺肟改性聚丙烯腈(PAN)纤维非均相Fenton催化剂,并通过配位作用将Cu2+引入该催化剂,制备了双金属负载改性PAN纤维催化剂(Cu Fe B-PAN)。并对该催化剂进行FTIR光谱、UV-Vis DRS谱图、光催化活性分析,探讨并分析了不同因素对光催化活性的影响。结果表明,Cu2+的引入拓宽了催化剂的可见光吸收范围;Cu2+的引入明显提高了催化剂的光催化活性,而且拓宽了p H适用范围;Cu2+的引入提高了催化剂对可见光的利用效率。
文摘Tris(bipyridine)ruthenium(Ⅱ)(Ru(bpy) 2+ 3) was incorporated into mesoporous silicate MCM 48. X ray diffraction and emission spectroscopy were used to investigate the products, Ru(bpy) 2+ 3/MCM 48. The emission spectra show that the wavelength of maximum intensity( λ max ) for Ru(bpy) 2+ 3 increases with the increase of Ru(bpy) 2+ 3 loading level in MCM 48. The photoluminescent property of Ru(bpy) 2+ 3/MCM 48 was investigated. It was observed that the wavelength maximum intensity( λ max ) for Ru(bpy) 2+ 3/MCM 48 was red shifted when acetone vapor was introduced. [WT5HZ]