Elbert Katherine C, Vo Thi, Krook Nadia M, Zygmunt William, Park Jungmi, Yager Kevin G, Composto Russell J, Glotzer Sharon C, Murray Christopher B
Department of Chemistry , University of Pennsylvania , Philadelphia , Pennsylvania 19104 , United States.
Department of Chemical Engineering , University of Michigan , Ann Arbor , Michigan 48109 , United States.
ACS Nano. 2019 Dec 24;13(12):14241-14251. doi: 10.1021/acsnano.9b07348. Epub 2019 Dec 4.
Many studies on nanocrystal (NC) self-assembly into ordered superlattices have focused mainly on attractive forces between the NCs, whereas the role of organic ligands on anisotropic NCs is only in its infancy. Herein, we report the use of a series of dendrimer ligands to direct the assembly of nanoplates into 2D and 3D geometries. It was found that the dendrimer-nanoplates consistently form a directionally offset architecture in 3D films. We present a theory to predict ligand surface distribution and Monte Carlo simulation results that characterize the ligand shell around the nanoplates. Bulky dendrimer ligands create a nontrivial corona around the plates that changes with ligand architecture. When this organic-inorganic effective shape is used in conjunction with thermodynamic perturbation theory to predict both lattice morphology and equilibrium relative orientations between NCs, a lock-and-key type of mechanism is found for the 3D assembly. We observe excellent agreement between our experimental results and theoretical model for 2D and 3D geometries, including the percent of offset between the layers of NCs. Such level of theoretical understanding and modeling will help guide future design frameworks to achieve targeted assemblies of NCs.
许多关于纳米晶体(NC)自组装成有序超晶格的研究主要集中在纳米晶体之间的吸引力上,而有机配体在各向异性纳米晶体上的作用仍处于起步阶段。在此,我们报道了使用一系列树枝状聚合物配体将纳米片组装成二维和三维几何结构。研究发现,树枝状聚合物-纳米片在三维薄膜中始终形成定向偏移结构。我们提出了一种理论来预测配体表面分布,并通过蒙特卡罗模拟结果来表征纳米片周围的配体壳层。庞大的树枝状聚合物配体在纳米片周围形成了一个随配体结构变化的复杂冠状层。当这种有机-无机有效形状与热力学微扰理论结合使用,以预测晶格形态和纳米晶体之间的平衡相对取向时,发现了一种用于三维组装的锁钥型机制。我们观察到二维和三维几何结构的实验结果与理论模型之间具有极好的一致性,包括纳米晶体层之间的偏移百分比。这种理论理解和建模水平将有助于指导未来的设计框架,以实现纳米晶体的靶向组装。