Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 119260, Republic of Singapore.
Nat Commun. 2013;4:1454. doi: 10.1038/ncomms2474.
Similar to molecular engineering where structural diversity is used to create more property variations for application explorations, the architectural engineering of heterogeneous metallic nanocrystals (HMNCs) can likewise increase the versatility of metallic nanocrystals (NCs). Here we present a synthesis strategy capable of engineering the architectural diversity of HMNCs through rational and independent programming of every architecture-determining element, that is, the shape and size of the component NCs and their spatial arrangement. The strategy is based on the galvanic replacement reaction of a self-sustaining layer formed by underpotential deposition on a polyhedral NC. The selective deposition of satellite NCs on specific site of the central NC is realized by creating a geometry-dependent heterogeneous electron distribution. This site-selective deposition approach is applicable to central NCs in various polyhedral shapes and sizes. The satellite NCs can further develop their own shape and size through crystal growth kinetics control.
类似于分子工程学中通过结构多样性来创造更多的属性变化以进行应用探索,异质金属纳米晶体 (HMNC) 的结构工程同样可以提高金属纳米晶体 (NC) 的多功能性。在这里,我们提出了一种合成策略,能够通过对每个决定结构的元素(即组成 NC 的形状和尺寸及其空间排列)进行合理且独立的编程,从而实现 HMNC 结构多样性的工程设计。该策略基于在多面 NC 上通过欠电势沉积形成的自维持层的电置换反应。通过创建依赖于几何形状的异质电子分布,实现了卫星 NC 在中央 NC 特定位置的选择性沉积。这种选择性沉积方法适用于各种多面体形和尺寸的中心 NC。卫星 NC 可以通过控制晶体生长动力学进一步发展其自身的形状和尺寸。