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Plasmonic Pd Nanoparticle- and Plasmonic Pd Nanorod-Decorated BiVO4 Electrodes with Enhanced Photoelectrochemical Water Splitting Efficiency Across Visible-NIR Region

机译:等离子Pd纳米颗粒和等离子Pd纳米棒修饰的BiVO4电极在可见-近红外区域具有增强的光电化学水分解效率

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摘要

The photoelectrochemical (PEC) water splitting performance of BiVO4 is partially hindered by insufficient photoresponse in the spectral region with energy below the band gap. Here, we demonstrate that the PEC water splitting efficiency of BiVO4 electrodes can be effectively enhanced by decorating Pd nanoparticles (NPs) and nanorods (NRs). The results indicate that the Pd NPs and NRs with different surface plasmon resonance (SPR) features delivered an enhanced PEC water splitting performance in the visible and near-infrared (NIR) regions, respectively. Considering that there is barely no absorption overlap between Pd nanostructures and BiVO4 and the finite-difference time domain (FDTD) simulation indicating there are substantial energetic hot electrons in the vicinity of Pd nanostructures, the enhanced PEC performance of Pd NP-decorated BiVO4 and Pd NR-decorated BiVO4 could both benefit from the hot electron injection mechanism instead of the plasmon resonance energy transfer process. Moreover, a combination of Pd NPs and NRs decorated on the BiVO4 electrodes leads to a broad-band enhancement across visible-NIR region.
机译:BiVO4的光电化学(PEC)水分解性能部分受到光谱带中带隙以下能量的光响应不足的影响。在这里,我们证明了通过装饰Pd纳米颗粒(NPs)和纳米棒(NRs)可以有效地提高BiVO4电极的PEC水分解效率。结果表明,具有不同表面等离振子共振(SPR)功能的Pd NP和NR分别在可见光和近红外(NIR)区域提供增强的PEC水分解性能。考虑到Pd纳米结构与BiVO4之间几乎没有吸收重叠,并且有限差分时域(FDTD)模拟表明Pd纳米结构附近存在大量高能热电子,Pd NP修饰的BiVO4和Pd的PEC性能增强NR修饰的BiVO4均可受益于热电子注入机制,而不是等离子体共振能量转移过程。此外,在BiVO4电极上装饰的Pd NP和NR的组合导致可见NIR区域的宽带增强。

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