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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Boron Environments in B-Doped and (B, N)-Codoped TiO2 Photocatalysts: A Combined Solid-State NMR and Theoretical Calculation Study
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Boron Environments in B-Doped and (B, N)-Codoped TiO2 Photocatalysts: A Combined Solid-State NMR and Theoretical Calculation Study

机译:B掺杂和(B,N)掺杂的TiO2光催化剂中的硼环境:固态NMR和理论计算的组合研究

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摘要

The structures and local environments of boron species in B-doped and (B, N)-codoped TiO2 photocatalysts have been investigated by solid-state B NMR spectroscopy in conjunction with density functional theory (DFT) calculations. Up to seven different boron sites were identified in the B-doped anatase TiO2 which may be classified into three categories, including interstitial, bulk BO_(3/2) polymer, and surface boron species, and has been supported by results obtained from FT-IR and XPS spectroscopy as well as from DFT calculations. Two types of interstitial borons, namely the tricoordinated (T*)- and pseudotetrahedral-coordinated (Q*) borons, were observed in addition to the two types of bulk BO_(3/2) polymer and three types of surface B, in good agreement with experimental data. Further density of state analyses revealed that, compared to undoped TiO2, the T* species in boron-doped TiO2 are solely responsible for the observed increase in energy band gap, whereas the presence of Q* species tend to lead to a decrease in band gap and hence are more favorable for the absorption in the visible-fight region. In comparison with B- and N-doped TiO2, (B, N)-codoped TiO2 tends to exhibit a much higher visible-light photocatalytic activity for the oxidation of rhodamine B. Accordingly, a photochemical mechanism of the (B, N)-codoped TiO2 under visible-light irradiation is proposed.
机译:通过固态B NMR光谱结合密度泛函理论(DFT)计算,研究了B掺杂和(B,N)掺杂的TiO2光催化剂中硼物种的结构和局部环境。在B掺杂的锐钛矿型TiO2中鉴定出多达七个不同的硼位点,可以将其分为三类,包括间隙型,块体BO_(3/2)聚合物和表面硼物种,并且得到了FT-红外和XPS光谱以及DFT计算。除了两种类型的块状BO_(3/2)聚合物和三种类型的表面B外,还观察到两种类型的间隙硼,即三配位(T *)和拟四面体配位(Q *)硼。与实验数据一致。进一步的状态密度分析表明,与未掺杂的TiO2相比,掺硼的TiO2中的T *物种是引起能带隙增加的唯一原因,而Q *物种的存在往往会导致带隙的减小因此对于可见光区域的吸收更有利。与B和N掺杂的TiO2相比,(B,N)掺杂的TiO2趋于表现出更高的可见光对罗丹明B氧化的光催化活性。因此,(B,N)-的光化学机理提出了在可见光下共掺杂TiO2的方法。

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