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Unveiling Growth Pathways of Multiply Twinned Gold Nanoparticles by In Situ Liquid Cell Transmission Electron Microscopy

机译:通过原位液体细胞透射电子显微镜揭示乘法孪晶纳米粒子的生长途径

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A mechanistic understanding of the growth of multiply twinned nanoparticles (MTPs), such as decahedra (Dh) and icosahedra (Ih), is crucial for precisely controlled syntheses and applications. Despite previous successes, no consensus has been reached regarding the multiple competing growth pathways for MTPs proposed thus far, in part due to the lack of information about their nucleation and growth dynamics. Here, we used decahedral and icosahedral gold nanoparticles as a model system in conjunction with in situ liquid cell transmission electron microscopy (LCTEM) to investigate the nucleation and growth dynamics of MTPs in aqueous solution; two growth pathways were successfully identified: (A) nucleation-based layer-by-layer growth from a rounded multiply twinned seed and (B) the successive twinning and growth of tetrahedra. The LCTEM results enabled us to directly and conclusively identify the growth behaviors of intermediate products. The internal strain relaxation mechanisms and growth kinetics differ for the two pathways: in pathway A, a MTP grew by the opening and closing of re-entrant grooves at the twin boundaries, which was not found in pathway B. We also analyzed different MTP growth pathways from an energetic perspective and discussed how the preferred pathway (A or B) is related to factors, such as the initial seed yield and the size- and morphology-dependent formation of MTPs. Our results contextualize the current understanding of MTP formation mechanisms and provide insightful guidance for the precisely controlled synthesis of MTPs for practical applications.
机译:对繁殖型纳米颗粒(MTPS)的生长的机械理解,例如Dechedra(DH)和ICOSahedra(IH),对于精确控制的合成和应用至关重要。尽管以前的成功,但没有关于迄今为止提出的MTP的多竞争成长途径,部分原因是由于缺乏有关其成核和生长动态的信息。在这里,我们将DecaheDral和IcosaheDral金纳米颗粒作为模型系统,与原位液体透射电子显微镜(Lctem)一起研究了水溶液中MTP的成核和生长动态;成功鉴定了两种生长途径:(a)从圆形繁殖孪晶种子和(b)的逐层基于成核的逐层生长和四面体的连续的孪晶和生长。 LCTEM结果使我们能够直接和最终确定中间产品的生长行为。内部应变弛豫机制和生长动力学对于两种途径不同:在通路A中,通过在途径B中未发现的双界处的再参与者凹槽的开口和关闭,从而缩短了MTP。我们还分析了不同的MTP生长从精力充沛的角度来看,探讨了优选的途径(A或B)与因素有关的途径,例如初始种子产量和依赖于MTP的依赖性形成。我们的结果表明,目前对MTP形成机制的了解,并为实际应用提供了精确控制的MTP合成的富有洞察力指导。

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