Andreussi Oliviero, Corni Stefano, Mennucci Benedetta, Tomasi Jacopo
Scuola Normale Superiore di Pisa, Piazza dei Cavalieri 7, 56125 Pisa, Italy.
J Chem Phys. 2004 Nov 22;121(20):10190-202. doi: 10.1063/1.1806819.
We present a model to evaluate the radiative and nonradiative lifetimes of electronic excited states of a molecule close to a metal particle of complex shape and, possibly, in the presence of a solvent. The molecule is treated quantum mechanically at Hartree-Fock (HF) or density-functional theory (DFT) level. The metal/solvent is considered as a continuous body, characterized by its frequency dependent local dielectric constant. For simple metal shapes (planar infinite surface and spherical particle) a version of the polarizable continuum model based on the integral equation formalism has been used, while an alternative methodology has been implemented to treat metal particles of arbitrary shape. In both cases, equations have been numerically solved using a boundary element method. Excitation energies and nonradiative decay rates due to the energy transfer from the molecule to the metal are evaluated exploiting the linear response theory (TDHF or TDDFT where TD--time dependent). The radiative decay rate of the whole system (molecule + metal/solvent) is calculated, still using a continuum model, in terms of the response of the surrounding to the molecular transition. The model presented has been applied to the study of the radiative and nonradiative lifetimes of a lissamine molecule in solution (water) and close to gold spherical nanoparticles of different radius. In addition, the influence of the metal shape has been analyzed by performing calculations on a system composed by a coumarin-type molecule close to silver aggregates of complex shape.
我们提出了一个模型,用于评估靠近复杂形状金属颗粒且可能处于溶剂中的分子电子激发态的辐射寿命和非辐射寿命。该分子在哈特里 - 福克(HF)或密度泛函理论(DFT)水平上进行量子力学处理。金属/溶剂被视为连续体,由其频率依赖的局部介电常数表征。对于简单的金属形状(平面无限表面和球形颗粒),使用了基于积分方程形式的可极化连续介质模型的一个版本,而采用了另一种方法来处理任意形状的金属颗粒。在这两种情况下,都使用边界元法对方程进行了数值求解。利用线性响应理论(含时HF或含时DFT,其中TD表示含时)评估了由于分子向金属的能量转移导致的激发能和非辐射衰减率。整个系统(分子 + 金属/溶剂)的辐射衰减率仍使用连续介质模型,根据周围环境对分子跃迁的响应来计算。所提出的模型已应用于研究溶液(水)中以及靠近不同半径的金球形纳米颗粒的丽丝胺分子的辐射寿命和非辐射寿命。此外,通过对由靠近复杂形状银聚集体的香豆素型分子组成的系统进行计算,分析了金属形状的影响。