Department of Chemistry, The Pennsylvania State University, 104 Chemistry Building, University Park, Pennsylvania 16802-4615, USA.
J Chem Phys. 2011 Oct 7;135(13):134103. doi: 10.1063/1.3643381.
A frequency-dependent quantum mechanics/molecular mechanics method for the calculation of response properties of molecules adsorbed on metal nanoparticles is presented. This discrete interaction model/quantum mechanics (DIM/QM) method represents the nanoparticle atomistically, thus accounting for the local environment of the nanoparticle surface on the optical properties of the adsorbed molecule. Using the DIM/QM method, we investigate the coupling between the absorption of a silver nanoparticle and of a substituted naphthoquinone. This system is chosen since it shows strong coupling due to a molecular absorption peak that overlaps with the plasmon excitation in the metal nanoparticle. We show that there is a strong dependence not only on the distance of the molecule from the metal nanoparticle but also on its orientation relative to the nanoparticle. We find that when the transition dipole moment of an excitation is oriented towards the nanoparticle there is a significant increase in the molecular absorption as a result of coupling to the metal nanoparticle. In contrast, we find that the molecular absorption is decreased when the transition dipole moment is oriented parallel to the metal nanoparticle. The coupling between the molecule and the metal nanoparticle is found to be surprisingly long range and important on a length scale comparable to the size of the metal nanoparticle. A simple analytical model that describes the molecule and the metal nanoparticle as two interacting point objects is found to be in excellent agreement with the full DIM/QM calculations over the entire range studied. The results presented here are important for understanding plasmon-exciton hybridization, plasmon enhanced photochemistry, and single-molecule surface-enhanced Raman scattering.
提出了一种用于计算吸附在金属纳米粒子上的分子的响应性质的频域量子力学/分子力学方法。这种离散相互作用模型/量子力学(DIM/QM)方法以原子的方式表示纳米粒子,从而考虑了纳米粒子表面的局部环境对吸附分子的光学性质的影响。使用 DIM/QM 方法,我们研究了银纳米粒子和取代萘醌的吸收之间的耦合。选择该体系是因为由于分子吸收峰与金属纳米粒子中的等离子体激发重叠,所以表现出强耦合。我们表明,不仅分子与金属纳米粒子的距离而且其相对于纳米粒子的取向都有很强的依赖性。我们发现,当激发的跃迁偶极矩朝向纳米粒子时,由于与金属纳米粒子的耦合,分子的吸收会显著增加。相比之下,当跃迁偶极矩平行于金属纳米粒子时,我们发现分子的吸收会降低。发现分子与金属纳米粒子之间的耦合具有惊人的远程和重要性,其长度尺度与金属纳米粒子的尺寸相当。我们发现,一个简单的分析模型,该模型将分子和金属纳米粒子描述为两个相互作用的点物体,在整个研究范围内与完整的 DIM/QM 计算非常吻合。此处呈现的结果对于理解等离子体激子杂化,等离子体增强光化学和单分子表面增强拉曼散射非常重要。