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Study of the Structure, Electronic and Optical Properties of BiOI/Rutile-TiO2 Heterojunction by the First-Principle Calculation

机译:通过第一原理计算研究生物/臭氧-TIO2异质结的结构,电子和光学性质

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Using the first-principle calculation that is based on the density functional theory (DFT), our group gains some insights of the structural, electronic and optical properties of two brand new types of BiOI/TiO2 heterojunctions: 1I-terminated BiOI {001} surface/TiO2 (1I-BiOI/TiO2) and BiO-terminated BiOI {001} surface/TiO2 (BiO-BiOI/TiO2). The calculation illustrates that BiOI/TiO2 heterojunction has excellent mechanical stability, and it shows that there is a great possibility for the BiOI/TiO2 heterojunction to be used in visible-light range, hence the photocatalytic ability can be enhanced dramatically. Especially, from the calculation, we discovered that there are two specific properties: the band-gap of 1I-BiOI/TiO2 heterojunction reduces to 0.28 eV, and the BiO-BiOI/TiO2 semiconductor material changes to n-type. The calculated band offset (BOs) for 1I-BiOI/TiO2 heterojunction indicates that the interfacial structure contributes a lot to a suitable band alignment which can disperse the photo-generated carriers into the opposite sides of the interface, so this could effectively weaken the electron-hole recombination. Meanwhile, the built-in potential around the interface accelerates the movement of the photo-generated electron-hole pairs. We believe this is the reason that the BiOI/TiO2 material shows perfect photocatalytic performance. This paper can provide theoretical support for the related research, especially the further research of the BiOI-based material.
机译:利用基于密度函数理论(DFT)的第一原理计算,我们的团队提出了两种全新类型的BioI / TiO2异质函数的结构,电子和光学性质的一些见解:1i-终止的生物{001}表面/ TiO2(1I-BioI / TiO 2)和生物封端的生物{001}表面/ TiO2(生物生物/ TiO 2)。该计算说明BioI / TiO 2异质结具有优异的机械稳定性,并且表明BioI / TiO 2异质结具有在可见光范围内使用的很大可能,因此可以显着提高光催化能力。特别是从计算中,我们发现有两种特异性:1I-BioI / TiO 2的带间隙降低至0.28eV,并且生物生物/ TiO2半导体材料变为n型。 1i-Bioi / TiO2异质结的计算带偏移(BOS)表明界面结构有很大贡献到合适的带对准,这可以将光产生的载体分散到界面的相对侧,因此这可以有效地削弱电子-Hole重组。同时,界面周围的内置电位加速了光产生的电子孔对的运动。我们认为这是生物/ TiO2材料表现出完善的光催化性能的原因。本文可以为相关研究提供理论支持,尤其是对生物基材料的进一步研究。

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