WestCHEM, Department of Chemistry, The University of Glasgow, Glasgow, G12 8QQ, UK.
Science. 2010 Jan 1;327(5961):72-4. doi: 10.1126/science.1181735.
Self-assembly has proven a powerful means of preparing structurally intricate nanomaterials, but the mechanism is often masked by the common one-pot mixing procedure. We employed a flow system to study the steps underlying assembly of a previously characterized molybdenum oxide wheel 3.6 nanometers in diameter. We observed crystallization of an intermediate structure in which a central {Mo36} cluster appears to template the assembly of the surrounding {Mo150} wheel. The transient nature of the template is demonstrated by its ejection after the wheel is reduced to its final electronic state. The template's role in the self-assembly mechanism is further confirmed by the deliberate addition of the template to the reaction mixture, which greatly accelerates the assembly time of the {Mo150} wheel and increases the yield.
自组装已被证明是一种制备结构复杂的纳米材料的有效手段,但由于常见的一锅混合程序,其机制往往被掩盖。我们采用流动系统研究了先前所表征的直径为 3.6 纳米的氧化钼轮的组装的基础步骤。我们观察到了中间结构的结晶,其中一个中心 {Mo36} 簇似乎为周围 {Mo150} 轮的组装提供了模板。该模板的瞬态性质通过其在轮还原为最终电子态后被弹出得到证明。通过故意将模板添加到反应混合物中,进一步证实了模板在自组装机制中的作用,这大大加速了 {Mo150} 轮的组装时间并提高了产率。