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Novel Highly Active Anatase/Rutile TiO2 Photocatalyst with Hydrogenated Heterophase Interface Structures for Photoelectrochemical Water Splitting into Hydrogen

机译:具有用于光电化学水分解成氢气的氢化异戊二酶界面结构的新型高活性锐钛矿/金红石TiO2光催化剂

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摘要

In the past few years, anatase/rutile TiO2 heterophase junction structures with highly efficient photo catalytic performance have been explored widely, while their activities are still unsatisfactory in solar-to-hydrogen energy conversion. In this study, a novel anatase/rutile TiO2 photoelectrode with hydrogenated heterophase interface structures (A-H-RTNA) was successfully designed and synthesized for the first time via hydrothermal synthesis hydrogenation branching growth. Structure characterization indicated that the hydrogenated interfaces between anatase branches and rutile TiO2 nanorod hold appropriate oxygen vacancies and Ti3+ and inferred that new energy levels of oxygen vacancy and Ti-OH lie below the band edge positions of conduction band and valence band of rutile TiO2 nanorod, respectively. The matching energy levels between anatase branches and hydrogenated rutile nanorod obviously reduce the recombination of the photogenerated carriers, resulting in a superior photoelectrochemical (PEC) performance. The hydrogen evolution rate on A-H-RTNA photoelectrode for PEC water splitting is 20 and 2.1 times those of unhydrogenated TiO2 nanorod arrays photoelectrode (RTNA) and surface-hydrogenated anatase/rutile TiO2 photoelectrode (H-A-RTNA), respectively. This work provides new insight into the effect of hydrogenated heterophase interface structure on the PEC properties of TiO2.
机译:在过去的几年中,锐钛矿/金红石TiO2具有高效照片催化性能的异相色结结构已被广泛探讨,而在太阳能能量转化中,其活性仍然不令人满意。在该研究中,通过水热合成氢化分支生长,成功地设计和合成了具有氢化的异相体界面结构(A-HTARNA)的新型锐钛矿/金光孔TiO2光电极。结构表征表明,锐钛矿分支和金红石TiO2纳米棒之间的氢化界面保持适当的氧空位和Ti3 +,并推断出氧空位和Ti-OH的新能量水平位于金红石TiO2纳米棒的传导和价带的带边缘位置下方,分别。锐钛矿分支和氢化金红石纳米棒之间的匹配能量明显减少了光生载体的重组,导致了优异的光电化学(PEC)性能。用于PEC水分解的A-H-RTA光电极上的氢进化率为20〜2.1倍,即未氢化的TiO2纳米阵列光电极(RTNA)和表面 - 氢化的锐钛矿/金属糖酶/金属丝TiO2光电极(H-A-α)。这项工作提供了新的洞察氢化异相体界面结构对TiO2的PEC性质的影响。

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