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Ultra rapid direct heating synthesis of ZnO nanorods with improved light trapping from stacked photoanodes for high efficiency photocatalytic water splitting

机译:超快速直接加热合成ZnO纳米棒,改善堆积光阳极的光捕获效率,实现高效光催化水分解

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摘要

An ultra rapid growth method for vertically aligned ZnO nanorod (NR) thin films on metal meshes is developed using a direct heating synthesis (DHS) technique. A typical nanorod growth rate of 10 µm/hr was achieved. The effects of the applied heating powers and growth durations on the morphologies of ZnO nanostructures were examined. High density surface defects were formed on the ZnO NRs, which is responsible for slow charge recombination and high efficiency in the photoelectrochemical (PEC) water splitting process. The light absorption for a photoanode was significantly improved by light trapping using a 3D stacked metal mesh photoanode structure. With the internal reflection between the stacked photoanodes, the final light leakage is minimised. The light absorption in the stacked photoanode is improved without restricting the charge transportation. In comparison with a single mesh photoanode and a chemical bath deposition (CBD) grown flat photoanode, the PEC water splitting efficiency from the stacked photoanode was increased by a factor of 2.6 and 6.1 respectively.
机译:使用直接加热合成(DHS)技术开发了一种用于金属网上垂直排列的ZnO纳米棒(NR)薄膜的超快速生长方法。纳米棒的典型生长速率为10 µm / hr。研究了施加的加热功率和生长持续时间对ZnO纳米结构形态的影响。 ZnO NRs上形成了高密度的表面缺陷,这导致光电化学(PEC)水分解过程中的缓慢电荷重组和高效率。通过使用3D堆叠金属网状光电阳极结构进行光捕获,可显着提高光电阳极的光吸收。通过堆叠的光阳极之间的内部反射,最终的光泄漏得以最小化。在不限制电荷传输的情况下,改善了堆叠的光阳极中的光吸收。与单目光电阳极和化学浴沉积(CBD)生长的扁平光电阳极相比,从堆叠光电阳极得到的PEC的水分解效率分别提高了2.6和6.1倍。

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