Illobre Pablo Grobas, Lafiosca Piero, Bonatti Luca, Giovannini Tommaso, Cappelli Chiara
Scuola Normale Superiore, Piazza dei Cavalieri 7, 56126 Pisa, Italy.
Department of Physics, University of Rome Tor Vergata, Via della Ricerca Scientifica 1, 00133 Rome, Italy.
J Chem Phys. 2025 Jan 28;162(4). doi: 10.1063/5.0245629.
A multiscale quantum mechanical (QM)/classical approach is presented that is able to model the optical properties of complex nanostructures composed of a molecular system adsorbed on metal nanoparticles. The latter is described by a combined atomistic-continuum model, where the core is described using the implicit boundary element method (BEM) and the surface retains a fully atomistic picture and is treated employing the frequency-dependent fluctuating charge and fluctuating dipole (ωFQFμ) approach. The integrated QM/ωFQFμ-BEM model is numerically compared with state-of-the-art fully atomistic approaches, and the quality of the continuum/core partition is evaluated. The method is then extended to compute surface-enhanced Raman scattering within a time-dependent density functional theory framework.
本文提出了一种多尺度量子力学(QM)/经典方法,该方法能够对由吸附在金属纳米颗粒上的分子系统组成的复杂纳米结构的光学性质进行建模。后者由原子-连续介质组合模型描述,其中核心部分使用隐式边界元法(BEM)描述,表面保留完全原子图像,并采用频率相关的波动电荷和波动偶极子(ωFQFμ)方法进行处理。将集成的QM/ωFQFμ-BEM模型与最先进的全原子方法进行了数值比较,并评估了连续介质/核心分区的质量。然后将该方法扩展到在含时密度泛函理论框架内计算表面增强拉曼散射。