Walsh Gary F, Forestiere Carlo, Dal Negro Luca
Department of Electrical and Computer Engineering & Photonic Center, Boston University, 8 Saint Mary’s Street, MA 02215, USA.
Opt Express. 2011 Oct 10;19(21):21081-90. doi: 10.1364/OE.19.021081.
Using spectroscopic ellipsometry and analytical multiple scattering theory, we demonstrate significant depolarization of far-field reflected light due to plasmonic near-field concentration in dimer arrays of metallic nanoparticles fabricated by electron beam lithography. By systematically investigating dimer arrays with varying sub-wavelength interparticle separations, we show that the measured depolarization presents a sharp peak at the Rayleigh cutoff condition for efficient in-plane diffraction. Moreover, by investigating the depolarization of reflected light as a function of the excitation angle, we demonstrate that maximum depolarization occurs in the spectral regions of plasmon-enhanced near-fields. Our results demonstrate that far-field reflection measurements encode information on the near-field spectra of complex nanoparticle arrays, and can be utilized to experimentally determine the optimal conditions for the excitation of sub-wavelength plasmonic resonances. The proposed approach opens novel opportunities for the engineering of nanoparticle arrays with optimized enhancement of optical cross sections for spectroscopic and sensing applications.
利用光谱椭偏仪和解析多重散射理论,我们证明了通过电子束光刻制造的金属纳米颗粒二聚体阵列中,由于等离子体近场集中,远场反射光存在显著的去极化现象。通过系统地研究具有不同亚波长粒子间间距的二聚体阵列,我们表明,在用于高效面内衍射的瑞利截止条件下,测得的去极化呈现出一个尖锐的峰值。此外,通过研究反射光的去极化随激发角的变化,我们证明了最大去极化发生在等离子体增强近场的光谱区域。我们的结果表明,远场反射测量编码了关于复杂纳米颗粒阵列近场光谱的信息,并且可用于通过实验确定激发亚波长等离子体共振的最佳条件。所提出的方法为设计具有优化光学截面增强的纳米颗粒阵列开辟了新的机会,可用于光谱和传感应用。