Fast and complete degradation of Congo red under visible light with Er3+ and Nd3+ ions doped TiO2 nanocomposites

H. Narayan, H. Alemu, Daniel N. Alotsi, L. Macheli, Madhavi Thakurdesai, Sandesh V. Jaybhaye, Arvind P. Singh
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引用次数: 3

Abstract

We report fast and complete destruction of the dye Congo red (CR) under visible light in the presence of Nd3+ and Er3+ doped TiO2 nanocomposites (NCs). TiO2 NCs with general composition TiO2[R2O3]x, {x=0.1, 0.2; R≡ Nd, Er} and particle size 12-16 nm were synthesized through co-precipitation/hydrolysis (CPH). A set of similar composites was also prepared through solid state reaction (SSR) route, which produced 31- 47 nm particles. After characterization, visible light photocatalytic activity of all the samples was recorded for the degradation of CR. NCs with molar concentration x=0.2 of both doping types produced close to 100% degradation in 180 min. The apparent rate constant (kobs) was found to be 2.91×10–2 min–1 and 2.36×10–2 min–1, for these Nd3+ and Er3+ doped NCs, respectively. The other NCs with x=0.1, also showed significant degradation of CR, but the samples prepared through SSR performed worse. The excellent degradation obtained with the NCs may be attributed to their small particle size. Moreover, the doping of Nd3+ and Er3+ ions further supported the photocatalysis through formation of intermediate energy levels within the band gap of TiO2. These new levels not only acted as electron traps for efficient suppression of the undesired e–/h+ recombination, but also facilitated to a certain extent the absorption of visible irradiation.
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Er3+和Nd3+离子掺杂TiO2纳米复合材料在可见光下快速完全降解刚果红
我们报道了在Nd3+和Er3+掺杂的TiO2纳米复合材料(nc)的存在下,在可见光下染料刚果红(CR)的快速和完全破坏。TiO2 NCs的一般成分为TiO2[R2O3]x, {x=0.1, 0.2;R≡Nd, Er},粒径为12 ~ 16 nm,采用共沉淀/水解(CPH)法制备。通过固相反应(SSR)制备了一套类似的复合材料,得到了31 ~ 47 nm的颗粒。表征完成后,记录了所有样品的可见光催化降解CR的活性,两种掺杂类型的NCs在摩尔浓度x=0.2的情况下,在180 min内降解接近100%,Nd3+和Er3+掺杂NCs的表观速率常数(kobs)分别为2.91×10-2 min - 1和2.36×10-2 min - 1。其他x=0.1的NCs对CR的降解也很显著,但通过SSR制备的样品降解效果较差。纳米碳具有优异的降解性能,可能是由于它们的粒径小。此外,Nd3+和Er3+离子的掺杂通过在TiO2带隙内形成中间能级进一步支持了光催化作用。这些新的能级不仅作为电子陷阱有效地抑制了不想要的e - /h+复合,而且在一定程度上促进了可见光辐射的吸收。
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