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Efficient Solar-Induced Photoelectrochemical Response Using Coupling Semiconductor TiO2-ZnO Nanorod Film

机译:耦合半导体TiO2-ZnO纳米棒薄膜的高效太阳诱导的光电化学响应

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摘要

Efficient solar driven photoelectrochemical (PEC) response by enhancing charge separation has attracted great interest in the hydrogen generation application. The formation of one-dimensional ZnO nanorod structure without bundling is essential for high efficiency in PEC response. In this present research work, ZnO nanorod with an average 500 nm in length and average diameter of about 75 nm was successfully formed via electrodeposition method in 0.05 mM ZnCl2 and 0.1 M KCl electrolyte at 1 V for 60 min under 70 °C condition. Continuous efforts have been exerted to further improve the solar driven PEC response by incorporating an optimum content of TiO2 into ZnO nanorod using dip-coating technique. It was found that 0.25 at % of TiO2 loaded on ZnO nanorod film demonstrated a maximum photocurrent density of 19.78 mA/cm2 (with V vs. Ag/AgCl) under UV illumination and 14.75 mA/cm2 (with V vs. Ag/AgCl) under solar illumination with photoconversion efficiency ~2.9% (UV illumination) and ~4.3% (solar illumination). This performance was approximately 3–4 times higher than ZnO film itself. An enhancement of photocurrent density and photoconversion efficiency occurred due to the sufficient Ti element within TiO2-ZnO nanorod film, which acted as an effective mediator to trap the photo-induced electrons and minimize the recombination of charge carriers. Besides, phenomenon of charge-separation effect at type-II band alignment of Zn and Ti could further enhance the charge carrier transportation during illumination.
机译:通过增强电荷分离的高效太阳能驱动的光电化学(PEC)响应引起了氢生成应用的极大兴趣。没有束缚的一维ZnO纳米棒结构的形成对于PEC响应的高效率至关重要。在本研究工作中,通过电沉积方法,在70 mC的条件下于0.05 mM ZnCl2和0.1 M KCl电解质中于1 V电压下60分钟成功地形成了平均长度为500 nm,平均直径约为75 nm的ZnO纳米棒。通过使用浸涂技术将最佳含量的TiO2掺入ZnO纳米棒中,人们一直在不断努力以进一步改善太阳能驱动的PEC响应。发现在紫外线照射下,负载在ZnO纳米棒膜上的0.25 at%TiO2表现出最大光电流密度为19.78 mA / cm 2 (V对Ag / AgCl)和14.75 mA / cm < sup> 2 (在V与Ag / AgCl的作用下)在太阳光下的光转换效率分别约为2.9%(紫外线)和4.3%(太阳能)。该性能大约是ZnO薄膜本身的3-4倍。由于TiO2-ZnO纳米棒薄膜中有足够的Ti元素,从而提高了光电流密度和光转换效率,这是一种有效的介体,可以捕获光生电子并最小化电荷载流子的重组。此外,Zn和Ti的II型能带取向处的电荷分离效应现象可进一步增强照明过程中的载流子传输。

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