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首页> 外文期刊>Physical chemistry chemical physics: PCCP >How does the plasmonic enhancement of molecular absorption depend on the energy gap between molecular excitation and plasmon modes: a mixed TDDFT/FDTD investigation
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How does the plasmonic enhancement of molecular absorption depend on the energy gap between molecular excitation and plasmon modes: a mixed TDDFT/FDTD investigation

机译:等离子体吸收的等离子体增强如何取决于分子激发和等离子体激元模式之间的能隙:混合TDDFT / FDTD研究

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A real-time time-dependent density functional theory coupled with the classical electrodynamics finite difference time domain technique is employed to systematically investigate the optical properties of hybrid systems composed of silver nanoparticles (NPs) and organic adsorbates. The results demonstrate that the molecular absorption spectra throughout the whole energy range can be enhanced by the surface plasmon resonance of Ag NPs; however, the absorption enhancement ratio (AER) for each absorption band differs significantly from the others, leading to the quite different spectral profiles of the hybrid complexes in contrast to those of isolated molecules or sole NPs. Detailed investigations reveal that the AER is sensitive to the energy gap between the molecular excitation and plasmon modes. As anticipated, two separate absorption bands, corresponding to the isolated molecules and sole NPs, have been observed at a large energy gap. When the energy gap approaches zero, the molecular excitation strongly couples with the plasmon mode to form the hybrid exciton band, which possesses the significantly enhanced absorption intensity, a red-shifted peak position, a surprising strongly asymmetric shape of the absorption band, and the nonlinear Fano effect. Furthermore, the dependence of surface localized fields and the scattering response functions (SRFs) on the geometrical parameters of NPs, the NP-molecule separation distance, and the external-field polarizations has also been depicted.
机译:实时时间依赖密度泛函理论与经典的电动力学有限差分时域技术相结合,用于系统研究由银纳米颗粒(NPs)和有机吸附物组成的杂化系统的光学性质。结果表明,Ag NPs的表面等离子体激元共振可以增强整个能量范围内的分子吸收光谱。但是,每个吸收带的吸收增强率(AER)彼此之间明显不同,从而导致杂化复合物的光谱特征与分离的分子或唯一的NPs截然不同。详细研究表明,AER对分子激发和等离子体激元模式之间的能隙敏感。如预期的那样,在较大的能隙处观察到了两个分离的吸收带,分别对应于分离的分子和唯一的NP。当能隙接近零时,分子激发与等离子体激元模式强烈耦合,形成混合激子带,该混合激子带具有明显增强的吸收强度,红移峰位置,令人惊讶的强烈不对称吸收带形状以及非线性Fano效应。此外,还描述了表面局部场和散射响应函数(SRF)对NP的几何参数,NP分子分离距离和外场极化的依赖性。

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