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Au@CdS Core–Shell Nanoparticles‐Modified ZnO Nanowires Photoanode for Efficient Photoelectrochemical Water Splitting

机译:Au @ CdS核壳纳米粒子修饰的ZnO纳米线光电阳极,用于高效光电化学水分解

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AbstractHydrogen production from water splitting using solar energy based on photoelectrochemical (PEC) cells has attracted increasing attention because it leaves less of a carbon footprint and has economic superiority of solar and hydrogen energy. Oxide semiconductors such as ZnO possessing high stability against photocorrosion in hole scavenger systems have been widely used to build photoanodes of PEC cells but under visible light their conversion efficiencies with respect to incident-photon-to-current conversion efficiency (IPCE) measured without external bias are still not satisfied. An innovative way is presented here to significantly improve the conversion efficiency of PEC cells by constructing a core–shell structure-based photoanode comprising Au@CdS core–shell nanoparticles on ZnO nanowires (Au@CdS-ZnO). The Au core offers strong electronic interactions with both CdS and ZnO resulting in a unique nanojunction to facilitate charge transfer. The Au@CdS-ZnO PEC cell under 400 nm light irradiation without any applied bias provides an IPCE of 14.8%. Under AM1.5 light illumination with a bias of 0.4 V, the Au@CdS-ZnO PEC cell produces H2 at a constant rate of 11.5 μmol h−1 as long as 10 h. This work provides a fundamental insight to improve the conversion efficiency for visible light in water splitting.
机译:摘要利用基于光电化学(PEC)的太阳能将水分解产生的氢吸引了越来越多的关注,因为它留下的碳足迹较少,并且具有太阳能和氢能的经济优势。氧化物半导体(如ZnO)在空穴清除剂系统中具有较高的抗光腐蚀稳定性,已被广泛用于构建PEC电池的光阳极,但是在可见光下,它们的转换效率相对于入射光子-电流转换效率(IPCE)无需外部偏置即可测量仍然不满意。通过在ZnO纳米线上(Au @ CdS-ZnO)构建包含Au @ CdS核壳纳米粒子的基于核壳结构的光电阳极,此处提出了一种创新的方法来显着提高PEC细胞的转换效率。金核提供了与CdS和ZnO的强电子相互作用,从而形成了独特的纳米结以促进电荷转移。在不施加任何偏压的情况下,在400 nm光照射下的Au @ CdS-ZnO PEC电池提供的IPCE为14.8%。在具有0.4 V偏压的AM1.5光照射下,Au @ CdS-ZnO PEC电池可在10 h内以11.5μmolh -1 的恒定速率产生H2。这项工作为提高水分解中可见光的转换效率提供了基本见识。

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