sn掺杂TiO2的光催化性能

I. Myronyuk, V. Kotsyubynsky, V. Boychuk, I. Mykytyn, V. Gun'ko
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引用次数: 2

摘要

合成了锡掺杂二氧化钛纳米粒子(锡含量分别为0、3、6和12 at)。以四氯化钛和四氯化锡的普通酸水解为基础,采用溶胶化学路线进行了制备。采用XRD、HR-TEM、低温氮吸附孔隙法、UV-Vis光谱等分析技术,系统研究了所得材料的物相组成、形貌、粒径、孔径分布及光催化性能。随着锡掺杂浓度的增加,锐钛矿相的相对含量从未掺杂的100 mol. %逐渐降低到最大掺杂浓度下的3 mol. %左右。锡原子含量为3和6 at的材料。%具有最大的比表面积(约280-290 m2/g),对应于最小的锐钛矿晶体(约2.5 nm)。采用紫外照射下亚甲基蓝染料光降解的方法,对合成的sn掺杂TiO2纳米颗粒进行了光催化活性分析。反应速率常数最高,对亚甲基蓝染料的吸附量最大。%掺锡钛与锐钛矿/金红石混合组成。间接光学跃迁是所有合成材料的特征。随着Sn含量的增加,带隙能值从纯锐钛矿的3.21 eV降低到掺杂12 at的2.82 eV。%的Sn被观察到。混合相样品的光催化活性的增长可以被认为是由于锐钛矿-金红石相变导致表面活性中心数量增加的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photocatalytic Properties of Sn-doped TiO2
The synthesis of Sn-doped titania nanoparticles (Sn content of 0, 3, 6, and 12 at. %) was carried out using solgel chemical route based on the common acid hydrolysis of titanium and tin tetrachlorides. Phase composition, morphology, particle size, pore size distribution and photocatalytic performance of obtained materials were systematically studied by various analytical techniques (XRD, HR-TEM, low-temperature nitrogen adsorption porosimetry, UV-Vis spectroscopy). An increase in the Sn dopant concentration causes a gradual decrease in the relative content of the anatase phase from 100 mol. % for undoped titania to about 3 mol. % for material with maximal doping concentration. Materials with a Sn atomic content of 3 and 6 at. % have the maximum values of the specific surface area (about 280-290 m2/g) that corresponds to the smallest (approximately 2.5 nm) anatase crystallite. The photocatalytic activity of the synthesized Sn-doped TiO2 nanoparticles was analyzed by the method of methylene blue dye photodegradation in an aqueous solution under UV irradiation. The highest reaction rate constant and maximal methylene blue dye adsorption capacity were obtained for 3 at. % Sn-doped titania with the mixed anatase/rutile composition. The indirect optical transitions are characteristic for all synthesized materials. A decrease in the bandgap energy values with increasing Sn content from 3.21 eV for pure anatase to 2.82 eV for titania doped with 12 at. % of the Sn was observed. The growth in photocatalytic activity for the mixed-phase sample can be considered as a result of the increasing number of surface active centers due to the anatase-rutile phase transition.
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