Md Sultan Mahmud, Shaojie Gu, S. Yoon, Yasuhiro Kimura, Yuhki Toku, Yang Ju
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引用次数: 0
摘要
由于具有出色的光催化特性,Fe2O3 在太阳能水分离领域是一种前景广阔的 n 型半导体材料。然而,Fe2O3 的光电化学性能受到其固有特性的限制,如导电性差,以及由于其重组率而导致的电荷分离效率低。因此,研究人员更加关注通过纳米结构、掺杂和表面涂层来克服 Fe2O3 的这些问题。在本研究中,我们研究了一种在高密度 Fe2O3 单晶纳米线阵列上制备 Ti 涂层层的低成本方法,用于太阳能水分离。首先,我们采用应力诱导原子扩散的新方法,在较低温度下制备了高密度 Fe2O3 单晶纳米线阵列。然后,用射频溅射法在制备好的纳米线阵列上镀上一层钛膜。在 Fe2O3 单晶纳米线阵列中镀上 13 nm 厚度的钛膜后,在 1.23 V 相对于 RHE 的电压下,光电流密度达到 1.36 mA/cm2,太阳能到氢气的转换效率(STH)达到 1.67%,这可能是由于纳米线的光电特性得到了调整。
Titanium-coated high-density Fe2O3 single crystal nanowire array for solar water splitting
Fe2O3 holds promising n-type semiconductor material in the field of solar water splitting due to its excellent photocatalytic properties. However, the photoelectrochemical performance of Fe2O3 is limited by its inherent properties such
as poor conductivity, and charge separation efficiency owing to its recombination rate. Therefore, researchers are more focused on nanostructuring, doping, and surface coating to overcome these issues of Fe2O3. In this study, we have investigated a low-cost way to fabricate
a Ti coating layer on a high-density Fe2O3 single-crystal nanowire array for solar water splitting. Firstly, we have prepared a high-density single-crystal Fe2O3 nanowire array at lower temperatures by a new approach stress-induced atomic diffusion
method. Thereafter, the prepared nanowire array was coated by Ti film using RF sputtering. The optimal film thickness of 13 nm titanium coatings layer into Fe2O3 single crystal nanowire array exhibited a high photocurrent density of 1.36 mA/cm2 at 1.23 V versus
RHE and solar to hydrogen conversion efficiency (STH) of 1.67%, which could be resulting from adjusted optoelectronic properties of the nanowires.