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Autocatalytic surface reduction and its role in controlling seed-mediated growth of colloidal metal nanocrystals

机译:自催化表面还原及其在控制种子介导的胶态金属纳米晶体生长中的作用

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摘要

The growth of colloidal metal nanocrystals typically involves an autocatalytic process, in which the salt precursor adsorbs onto the surface of a growing nanocrystal, followed by chemical reduction to atoms for their incorporation into the nanocrystal. Despite its universal role in the synthesis of colloidal nanocrystals, it is still poorly understood and controlled in terms of kinetics. Through the use of well-defined nanocrystals as seeds, including those with different types of facets, sizes, and internal twin structure, here we quantitatively analyze the kinetics of autocatalytic surface reduction in an effort to control the evolution of nanocrystals into predictable shapes. Our kinetic measurements demonstrate that the activation energy barrier to autocatalytic surface reduction is highly dependent on both the type of facet and the presence of twin boundary, corresponding to distinctive growth patterns and products. Interestingly, the autocatalytic process is effective not only in eliminating homogeneous nucleation but also in activating and sustaining the growth of octahedral nanocrystals. This work represents a major step forward toward achieving a quantitative understanding and control of the autocatalytic process involved in the synthesis of colloidal metal nanocrystals.
机译:胶态金属纳米晶体的生长通常涉及自催化过程,其中盐前体吸附到生长的纳米晶体的表面上,然后化学还原成原子以将其掺入纳米晶体中。尽管其在胶体纳米晶体的合成中具有普遍作用,但在动力学方面仍知之甚少。通过使用定义明确的纳米晶体作为种子,包括具有不同类型的小面,大小和内部孪生结构的那些,在这里我们定量分析自催化表面还原的动力学,以控制纳米晶体向可预测形状的演化。我们的动力学测量结果表明,对自催化表面还原的活化能屏障高度取决于刻面的类型和孪晶边界的存在,这与独特的生长方式和产物相对应。有趣的是,自催化过程不仅在消除均相成核方面有效,而且在活化和维持八面体纳米晶体的生长方面均有效。这项工作代表了迈向实现对胶体金属纳米晶体合成中涉及的自催化过程的定量理解和控制的重要一步。

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