Googasian Jack S, Skrabalak Sara E
Department of Chemistry, Indiana University-Bloomington, 800 East Kirkwood Avenue, Bloomington, Indiana 47405, United States.
ACS Phys Chem Au. 2023 Feb 7;3(3):252-262. doi: 10.1021/acsphyschemau.2c00064. eCollection 2023 May 24.
Simulating the plasmonic properties of colloidally derived metal nanoparticles with accuracy to their experimentally observed measurements is challenging due to the many structural and compositional parameters that influence their scattering and absorption properties. Correlation between single nanoparticle scattering measurements and simulated spectra emphasize these strong structural and compositional relationships, providing insight into the design of plasmonic nanoparticles. This builds from this history to highlight how the structural features of models used in simulation methods such as those based on the Finite-Difference Time-Domain (FDTD) method and Discrete Dipole Approximation (DDA) are of critical consideration for correlation with experiment and ultimately prediction of new nanoparticle properties. High-level characterizations such as electron tomography are discussed as ways to advance the accuracy of models used in such simulations, allowing the plasmonic properties of structurally complex nanoparticles to be better understood. However, we also note that the field is far from bringing experiment and simulation into agreement for plasmonic nanoparticles with complex compositions, reflecting analytical challenges that inhibit accurate model generation. Potential directions for addressing these challenges are also presented.
由于影响其散射和吸收特性的结构和成分参数众多,要精确模拟胶体衍生金属纳米颗粒的等离子体特性并使其与实验测量结果相符具有挑战性。单个纳米颗粒散射测量与模拟光谱之间的相关性强调了这些强大的结构和成分关系,为等离子体纳米颗粒的设计提供了见解。这是基于这段历史来突出说明,诸如基于时域有限差分(FDTD)方法和离散偶极近似(DDA)等模拟方法中使用的模型的结构特征,对于与实验的相关性以及最终对新纳米颗粒特性的预测至关重要。讨论了诸如电子断层扫描等高阶表征,作为提高此类模拟中使用的模型准确性的方法,从而能够更好地理解结构复杂的纳米颗粒的等离子体特性。然而,我们也注意到,对于具有复杂成分的等离子体纳米颗粒,该领域距离使实验和模拟达成一致还相差甚远,这反映了抑制精确模型生成的分析挑战。还提出了应对这些挑战的潜在方向。