Mahmoud Mahmoud A
Laser Dynamics Laboratory, School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia 30332-0400, USA.
J Chem Phys. 2015 Aug 21;143(7):074703. doi: 10.1063/1.4928734.
The field coupling in highly packed plasmonic nanoparticle arrays is not localized due to the energy transport via the sub-radiant plasmon modes, which is formed in addition to the regular super-radiant plasmon mode. Unlike the sub-radiant mode, the plasmon field of the super-radiant mode cannot extend over long distances since it decays radiatively with a shorter lifetime. The coupling of the plasmon fields of gold nanocubes (AuNCs) when organized into highly packed 2D arrays was examined experimentally. Multiple plasmon resonance optical peaks are observed for the AuNC arrays and are compared to those calculated using the discrete dipole approximation. The calculated electromagnetic plasmon fields of the arrays displayed high field intensity for the nanocubes located in the center of the arrays for the lower energy super-radiant mode, while the higher energy sub-radiant plasmon mode displayed high field intensity at the edges of the arrays. The Raman signal enhancement by the super-radiant plasmon mode was found to be one hundred fold greater than that by sub-radiant plasmon mode because the super-radiant mode has higher scattering and stronger plasmon field intensity relative to the sub-radiant mode.
由于通过亚辐射等离子体模式进行能量传输,高度密集的等离子体纳米颗粒阵列中的场耦合并非局限于局部,这种亚辐射等离子体模式是在常规的超辐射等离子体模式之外形成的。与亚辐射模式不同,超辐射模式的等离子体场不能远距离延伸,因为它会通过辐射衰变,寿命较短。实验研究了金纳米立方体(AuNCs)组织成高度密集的二维阵列时等离子体场的耦合情况。观察到AuNC阵列有多个等离子体共振光学峰,并将其与使用离散偶极近似法计算得到的结果进行了比较。对于较低能量的超辐射模式,阵列计算得到的电磁等离子体场在位于阵列中心的纳米立方体处显示出高场强,而较高能量的亚辐射等离子体模式在阵列边缘显示出高场强。发现超辐射等离子体模式的拉曼信号增强比亚辐射等离子体模式大一百倍,因为相对于亚辐射模式,超辐射模式具有更高的散射和更强的等离子体场强。