Liu Zhen, Oviedo M Belén, Wong Bryan M, Aikens Christine M
Department of Chemistry, Kansas State University, Manhattan, Kansas 66506, USA.
Department of Chemical and Environmental Engineering and Materials Science and Engineering Program, University of California-Riverside, Riverside, California 92521, USA.
J Chem Phys. 2022 Apr 21;156(15):154705. doi: 10.1063/5.0082960.
Using real-time quantum dynamics calculations, we perform theoretical investigations of light-induced interactions and electronic excitation transfer in a silver nanoparticle dimer. Real-time time-dependent density functional tight-binding (RT-TDDFTB) calculations provide details of the quantum dynamical processes at an electronic/atomistic level with attosecond resolution. The computational efficiency of RT-TDDFTB allows us to examine electronic dynamics up to picosecond time scales. With time scales varying over six orders of magnitude, we provide insight into interactions between the nanoparticle and laser and between nanoparticles. Our results show that the coupling between nanoparticle monomers is dependent on the separation distance between the nanoparticles in the dimer. As the interparticle distance is varied, the dipole-dipole interactions and electronic excitation transfer mechanisms are markedly different. At large distances (from 50 to 20 Å), the energy transfer from NP1 to NP2 becomes more efficient as the interparticle distance decreases. The total dipole moment of the Ag nanoparticle dimer increases linearly at an interparticle distance of 20 Å and reaches its maximum after 1.2 ps. The electronic excitation transfer is also the most efficient at 20 Å. At short distances, back-transfer effects reduce the ability of the dimer and NP1 to accept energy from the incident electric field. We attribute the distance-dependent features of the nanoparticle dimer to the beating between the laser acting on NP1 and the back transfer from NP2 to NP1.
利用实时量子动力学计算,我们对银纳米颗粒二聚体中的光诱导相互作用和电子激发转移进行了理论研究。实时含时密度泛函紧束缚(RT-TDDFTB)计算在电子/原子水平上以阿秒分辨率提供了量子动力学过程的详细信息。RT-TDDFTB的计算效率使我们能够研究长达皮秒时间尺度的电子动力学。随着时间尺度跨越六个数量级变化,我们深入了解了纳米颗粒与激光之间以及纳米颗粒之间的相互作用。我们的结果表明,纳米颗粒单体之间的耦合取决于二聚体中纳米颗粒之间的分离距离。随着粒子间距离的变化,偶极-偶极相互作用和电子激发转移机制明显不同。在较大距离(从50到20 Å)时,随着粒子间距离减小,从NP1到NP2的能量转移变得更有效。银纳米颗粒二聚体的总偶极矩在粒子间距离为20 Å时线性增加,并在1.2 ps后达到最大值。电子激发转移在20 Å时也是最有效的。在短距离时,反向转移效应降低了二聚体和NP1从入射电场接受能量的能力。我们将纳米颗粒二聚体的距离依赖性特征归因于作用在NP1上的激光与从NP2到NP1的反向转移之间的拍频。