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Origin of High Photocatalytic Properties in the Mixed-Phase TiO2: A First-Principles Theoretical Study

机译:混合相TiO2中高光催化性能的起源:第一性原理研究

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We present a step-by-step theoretical protocol based on the first-principles methods to reveal the insight into the origin of the high photocatalytic activity achieved by the mixed-phase TiO2, consisting of anatase and rutile. The interfacial geometries, density of states, charge densities, optical absorption spectrum, electrostatic potential, and band offsets have been calculated. The most stable mixed-phase structures have been identified, the interfacial tensile strain-dependent electronic structures have been observed, and the energy level diagram of band alignment has been given. We find that the geometrical reconstruction around the interfacial area has a negligible influence on the light absorption of the heterojunction and the interfacial sites seem not to dominantly contribute to the band-edge states. For the most stable heterojunction, the calculated valence-band maximum and conduction-band minimum of rutile, respectively, He 0.52 and 0.22 eV above those of anatase, which agrees well with the experimental measurements and other theoretical predications. The good match of band energies to reaction requirements, large driving force for the charge immigration across the interface, and the difference of electrostatic potentials around the interface successfully explain the high photocatalytic activity achieved by the mixed-phase TiO2.
机译:我们提出了基于第一原理方法的循序渐进的理论协议,以揭示由锐钛矿和金红石组成的混合相TiO2实现的高光催化活性的起源的见识。已经计算出界面几何形状,状态密度,电荷密度,光学吸收光谱,静电势和能带偏移。确定了最稳定的混合相结构,观察到了界面拉伸应变相关的电子结构,并给出了能带排列的能级图。我们发现界面周围的几何重构对异质结光吸收的影响可以忽略不计,界面位点似乎对带边缘态没有显着贡献。对于最稳定的异质结,计算得到的金红石的价带最大值和导带最小值分别比锐钛矿的价带高0.52 eV和0.22 eV,这与实验测量值和其他理论预测相吻合。能带能量与反应要求的良好匹配,电荷跨界面迁移的大驱动力以及界面周围静电势的差异成功地解释了混合相TiO2所具有的高光催化活性。

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