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Angstrom Thick ZnO Passivation Layer to Improve the Photoelectrochemical Water Splitting Performance of a TiO2 Nanowire Photoanode: The Role of Deposition Temperature

机译:埃厚的ZnO钝化层可提高TiO2纳米线光阳极的光电化学水分解性能:沉积温度的作用

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摘要

In this paper, we demonstrate that angstrom thick single atomic layer deposited (ALD) ZnO passivation can significantly improve the photoelectrochemical (PEC) activity of hydrothermally grown TiO2 NWs. It is found that this ultrathin ZnO coating can passivate the TiO2 surface defect states without hampering the carrier’s transfer dynamics. Moreover, a substantial improvement can be acquired by changing the deposition temperature of the ZnO layer (80 °C, and 250 °C) and named as 80 °C TiO2-ZnO, and 250 °C TiO2-ZnO. It was found that the deposition of this single layer in lower temperatures can lead to higher PEC activity compared to that deposited in higher ones. As a result of our PEC characterizations, it is proved that photoconversion efficiency of bare TiO2 NWs can be improved by a factor of 1.5 upon coating it with a single ZnO layer at 80 °C. Moreover, considering the fact that this layer is a passivating coating rather than a continuous layer, it also keeps the PEC stability of the design while this feature cannot be obtained in a thick shell layer case. This paper proposes a bottom up approach to control the electron transfer dynamics in a heterojunction design and it can be applied to other metal oxide combinations.
机译:在本文中,我们证明了埃厚的单原子层沉积(ALD)ZnO钝化可以显着提高水热生长的TiO2 NWs的光电化学(PEC)活性。发现这种超薄的ZnO涂层可以钝化TiO2表面缺陷状态,而不会影响载体的传输动力学。此外,通过改变ZnO层的沉积温度(80 C和250 C)并命名为80 C TiO2-ZnO和250 C TiO2-ZnO,可以获得实质性的改善。已发现,与在较高温度下沉积的单层相比,在较低温度下沉积此单层可导致较高的PEC活性。作为我们的PEC特性的结果,证明了在80°C下用单个ZnO层覆盖时,裸露的TiO2纳米线的光转换效率可以提高1.5倍。此外,考虑到该层是钝化涂层而不是连续层这一事实,它还保持了设计的PEC稳定性,而在厚壳层的情况下无法获得此功能。本文提出了一种自底向上的方法来控制异质结设计中的电子转移动力学,并且可以将其应用于其他金属氧化物组合。

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