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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Preparation, Photocatalytic Activity, and Mechanism of Nano-TiO2 Co-Doped with Nitrogen and Iron (III)
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Preparation, Photocatalytic Activity, and Mechanism of Nano-TiO2 Co-Doped with Nitrogen and Iron (III)

机译:氮铁共掺杂纳米TiO2的制备,光催化活性及其机理

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摘要

Nanoparticles of titanium dioxide co-doped with nitrogen and iron (III) were first prepared using the homogeneous precipitation-hydrothermal method. The structure and properties of the co-doped were studied by XRD, XPS, Raman, FL, and UV-diffuse reflectance spectra. By analyzing the structures and photocatalytic activities of the undoped and nitrogen and/or Fe~(3+)-doped TiO2 under ultraviolet and visible light irradiation, the probable mechanism of co-doped particles was investigated. It is presumed that the nitrogen and Fe~(3+) ion doping induced the formation of new states closed to the valence band and conduction band, respectively. The co-operation of the nitrogen and Fe~(3+) ion leads to the much narrowing of the band gap and greatly improves the photocatalytic activity in the visible light region. Meanwhile, the co-doping can also promote the separation of the photogenerated electrons and holes to accelerate the transmission of photocurrent carrier. The photocatalyst co-doped with nitrogen and 0.5% Fe~(3+) shows the best photocatalytic activity, the degradation efficiencies of which were improved by 75% and 5% under visible and ultraviolet irradiation, respectively, compared with the pure titania.
机译:首先使用均相沉淀-水热法制备了共掺杂有氮和铁(III)的二氧化钛纳米粒子。通过XRD,XPS,Raman,FL和UV漫反射光谱研究了共掺杂的结构和性能。通过分析未掺杂和氮和/或Fe〜(3+)掺杂的TiO2在紫外和可见光照射下的结构和光催化活性,研究了共掺杂颗粒的可能机理。据推测,氮和Fe〜(3+)离子的掺杂分别诱导了新的态形成,这些态分别接近价带和导带。氮和Fe〜(3+)离子的配合导致带隙大大变窄,并大大提高了可见光区域的光催化活性。同时,共掺杂还可以促进光生电子和空穴的分离,从而加速光电流载流子的传输。与纯二氧化钛相比,氮和0.5%Fe〜(3+)共掺杂的光催化剂表现出最好的光催化活性,在可见光和紫外线照射下其降解效率分别提高了75%和5%。

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