首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >A nanoscale p-n junction photoelectrode consisting of an NiOx layer on a TiO2/CdS nanorod core-shell structure for highly efficient solar water splitting
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A nanoscale p-n junction photoelectrode consisting of an NiOx layer on a TiO2/CdS nanorod core-shell structure for highly efficient solar water splitting

机译:一种纳米级P-N结光电极,由TiO 2 / Cds纳米棒芯壳结构上的NiOx层组成,用于高效的太阳能分裂

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The TiO2/CdS system has attracted great attention in solar water-splitting applications owing to its desirable electronic and optical properties. With the aim of enhancing its photoelectrochemical water splitting efficiency, an efficient strategy is proposed via nanostructuring and linking it in a p-n junction configuration with NiO,. The deposition of TiO2 nanorods (NRs) and CdS was achieved using a hydrothermal synthesis route in the sequence, after which NiO was deposited via RF magnetron sputtering. Characterisation revealed the uniform deposition of CdS onto the TiO2 NRs, forming a core-shell morphology, and the deposition of NiO on top of the TiO2-NR/CdS resulted in a nanostructured p-n junction. X-ray photoelectron spectroscopy was used to resolve the valence band edge, and impedance studies confirmed the formation of a p-n junction; accordingly, the probable band edge positions of the photoelectrode were identified. The optimised TiO2-NR/CdS-NiO p-n junction electrode exhibited a remarkable photocurrent of "30 mA cm(-2) (at 1 V vs. Ag/AgC1) under AM 1.5 G simulated sunlight and an incident photon-to-current efficiency of "97% at 500 nm. Furthermore, during illumination, the production of H-2 gas occurred with a faradaic efficiency of 95%. The results of the study demonstrate the advantage of utilizing the TiO2-NR/CdS-NiO system in a p-n junction configuration to greatly enhancethe charge generation, separation and suppression of the charge recombination, which boosts its photoelectrochemical water splitting performance.
机译:由于其理想的电子和光学性能,TiO2 / CDS系统在太阳能水分裂应用中引起了极大的关注。旨在提高其光电化学水分裂效率的目的,通过纳米结构化提出了一种有效的策略,并用NIO将其连接在P-N结配置中。使用序列中的水热合成途径实现TiO2纳米棒(NRS)和Cds的沉积,之后通过RF磁控溅射沉积NiO。表征揭示了Cds在TiO 2 NR上均匀沉积,形成核心壳形态,并且在TiO 2 -NR / Cd的顶部沉积NIO导致纳米结构的P-N结。 X射线光电子能谱用于解析价带边缘,阻抗研究证实了P-N结的形成;因此,鉴定了光电极的可能带边缘位置。优化的TiO2-NR / Cds-NiO PN结电极显示出“30 mA cm(-2)的显着光电流,在AM 1.5g模拟阳光下的”30 mA cm(-2)(在1V Vs.AG / AGC1)下,并发生了反射光子至电流效率“500nm处的97%。此外,在照明期间,H-2气体的生产发生,载载效率为95%。该研究的结果证明了利用在P-N结构型中的TiO2-NR / Cds-NiO系统的优点,以大大提高电荷重组的电荷产生,分离和抑制,这提高了其光电化学水分解性能。

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