首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Facile preparation of 2D sandwich-like CdS nanoparticlesitrogen-doped reduced graphene oxide hybrid nanosheets with enhanced photoelectrochemical properties
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Facile preparation of 2D sandwich-like CdS nanoparticlesitrogen-doped reduced graphene oxide hybrid nanosheets with enhanced photoelectrochemical properties

机译:简便制备具有增强的光电化学特性的2D三明治状CdS纳米颗粒/氮掺杂的还原氧化石墨烯杂化纳米片

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摘要

A facile surface-layer-absorption strategy was successfully integrated via a simple in situ sulfidation reaction route for the deposition of CdS nanoparticles on N-doped reduce graphene oxide (N-rGO) nanosheets to produce 2D sandwich-like CdS/N-rGO hybrid nanosheets (HNs). The successful doping of N in the rGO nanosheets and the sandwich stuffing of CdS nanocrystals in the N-rGO sheets were revealed using a variety of techniques, including XPS, XRD and TEM. Compared to the pure CdS and CdS/rGO samples, the as-prepared sandwich CdS/N-rGO HNs exhibited a significantly enhanced photoelectrochemical current response and improved photocatalytic activity for the reduction of aqueous Cr(VI) and the photodegradation of rhodamine B (RhB) under visible-light irradiation. Owing to nitrogen doping in the carbon network of graphene and the unique combination of the CdS nanocrystals and N-rGO nanosheets, superior electrical conductivity could be obtained with the N-rGO matrix. This led to improved charge separation and transport of the photoinduced carriers from the CdS nanoparticles as well as enhanced photochemical performance, which was confirmed by transient photocurrent and electrochemical impedance spectroscopy (EIS).
机译:通过简单的原位硫化反应路线成功地整合了一种简便的表面层吸收策略,用于将CdS纳米颗粒沉积在N掺杂的还原氧化石墨烯(N-rGO)纳米片上,以生产2D三明治状CdS / N-rGO杂化物纳米片(HNs)。使用多种技术,包括XPS,XRD和TEM,揭示了在rGO纳米片中成功掺杂N和在N-rGO片中CdS纳米晶体夹心填充。与纯CdS和CdS / rGO样品相比,制备的三明治CdS / N-rGO HNs表现出显着增强的光电化学电流响应并改善了对Cr(VI)的还原和若丹明B(RhB)的光降解的光催化活性。 )在可见光照射下。由于石墨烯碳网络中的氮掺杂以及CdS纳米晶体和N-rGO纳米片的独特组合,使用N-rGO基质可以获得优异的导电性。这导致改善了电荷从CdS纳米颗粒中的分离和光诱导载流子的传输以及增强的光化学性能,这已通过瞬态光电流和电化学阻抗谱(EIS)证实。

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