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通过使用氧化亚铜壳来调整二氧化硅-金树莓状纳米粒子中表面等离激元的可观测性。

Tuning the observability of surface plasmon in silica-gold raspberry shaped nanoparticles using cuprous oxide shell.

机构信息

National Centre for Photovoltaic Research and Education (NCPRE) and Department of Physics, Indian Institute of Technology Bombay , Powai, Mumbai-400076, India.

出版信息

ACS Appl Mater Interfaces. 2013 Dec 11;5(23):12268-74. doi: 10.1021/am4039079. Epub 2013 Nov 22.

Abstract

A raspberry shaped silica-gold nanoparticle system has been coated with a cuprous oxide shell using a simple wet chemical approach. The optical properties of such particles depend on thin dielectric shell material, and we calculate far-field scattering and extinction of cuprous oxide coated silica-gold composite. In accordance with our theoretical findings, for ultrasmall gold nanoparticles (AuNPs < 5 nm) attached over silica, the localized surface plasmon resonance (LSPR) peak is completely suppressed after Cu2O coating. The cloaking (nonobservability) of the LSPR peak in extinction spectra has been explained via calculation of contribution from absorbance (<10%) and scattering (>90%) in the composite nanostructure. For larger particles (>5 nm), the traditional red-shift of the plasmon peak (from 532 to 588 nm) is still significant due to the large dielectric constant (approx. 8.0 @ 600 nm) of cuprous oxide (Cu2O) coating. A complete and controlled suppression of LSPR in small sized gold nanoparticles due to high dielectric refractory oxide shell could play a significant role in plasmon derived applications.

摘要

一种覆盆子形状的硅-金纳米粒子系统已经通过简单的湿化学方法被氧化亚铜壳所覆盖。这种粒子的光学性质取决于薄介电壳材料,我们计算了氧化亚铜包覆的硅-金复合纳米材料的远场散射和消光。根据我们的理论发现,对于附着在二氧化硅上的超小金纳米粒子(AuNPs < 5nm),在 Cu2O 涂层后,局域表面等离子体共振(LSPR)峰完全被抑制。通过计算复合纳米结构中吸收(<10%)和散射(>90%)的贡献,解释了消光光谱中 LSPR 峰的隐身(不可见性)。对于较大的粒子(>5nm),由于氧化亚铜(Cu2O)涂层的介电常数(约 8.0@600nm)较大,等离子体峰仍然存在明显的红移(从 532nm 到 588nm)。由于高介电难熔氧化物壳,小尺寸金纳米粒子中的 LSPR 完全和可控地被抑制,这可能在等离子体衍生应用中发挥重要作用。

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