首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Plasmon Enhancement Effect in Au Gold Nanorods@Cu2O Core Shell Nanostructures and Their Use in Probing Defect States
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Plasmon Enhancement Effect in Au Gold Nanorods@Cu2O Core Shell Nanostructures and Their Use in Probing Defect States

机译:等离子增强金金纳米棒@ Cu2O核壳纳米结构中的增强效应及其在探测缺陷状态中的应用

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Au@Cu2O core-shell nanostructures are fabricated to have a plasmon enhancement effect using Au nanorods (Au NRs) as a plasmon-tailorable core. By varying the concentration of Au NRs, we can tune the shell thickness in the range of 10-25 nm. The shell is composed of Cu2O nanocrystallites. Because of the thin shells, the extinction spectra at wavelength >500 nm are dominated by the Au core. However, the large dielectric constant of the shell causes an obvious red shift of the surface plasmon resonance (SPR) band of the Au nanorod. Besides, transverse octupolar SPR appears as a result of the anisotropy of the core and the high dielectric constant of the shell. The anisotropic geometry of the Au NR is found to support the octupolar resonances at smaller sizes than for their spherical counterpart. Theoretical simulations indicate that the transverse SPR bands are divided into two resonances, which are dipolar- and octupolar-dominant, respectively. The Cu2O shell degrades via a defect-mediated oxidative pathway, which is aggravated upon longitudinal SPR excitation. The SPR-mediated local field enhancement and resonance energy transfer are found to enhance the excitation of the defect states in the shell, thus providing a simple yet selective probing strategy for defect states.
机译:使用Au纳米棒(Au NRs)作为可定制等离激元的核,制造具有Au @ Cu2O核-壳纳米结构的等离激元增强效应。通过改变Au NRs的浓度,我们可以在10-25 nm的范围内调整壳的厚度。壳由Cu2O纳米微晶组成。由于壳很薄,波长大于500 nm的消光光谱受Au核的支配。但是,壳的大介电常数会导致Au纳米棒的表面等离振子共振(SPR)带明显的红移。此外,由于芯的各向异性和壳的高介电常数,出现了横向八极SPR。发现Au NR的各向异性几何形状以比其球形对应物小的尺寸支持八极共振。理论仿真表明,横向SPR频带分为两个共振,分别以偶极和八极为主。 Cu2O壳通过缺陷介导的氧化途径降解,这在纵向SPR激发时会加剧。发现SPR介导的局部场增强和共振能量转移增强了壳中缺陷状态的激发,从而为缺陷状态提供了一种简单而选择性的探测策略。

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