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Controlling the morphology of rhodium nanocrystals by manipulating the growth kinetics with a syringe pump

机译:通过注射泵控制生长动力学来控制铑纳米晶体的形貌

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Noble-metal nanocrystals with well-defined and controllable morphologies are of great importance to applications in catalysis, plasmonics, and surface-enhanced spectroscopy. Many synthetic approaches have been demonstrated for controlling the growth habit and thus morphology of metal nanocrystals, but most of them are based on a thermodynamic approach, including the use of a capping agent. While thermodynamic control has shown its power in generating nanocrystals with a myriad of different morphologies, it is ultimately limited by the obligation to minimize the surface energy of a system. As a result, it is impractical to use thermodynamic control to generate nanocrystals having high-energy facets and/or a negative curvature. Using rhodium as an example, here we demonstrate a general method based on kinetic control with a syringe pump that can be potentially extended to other noble metals and even other solid materials. For the first time, we were able to produce concave nanocubes with a large fraction of {110} facets and octapods with a cubic symmetry in high yields by simply controlling the injection rate at which the precursor was added into the reaction solution. The concave nanocubes with {110} facets and a unique cavity structure on the surface are important for a variety of applications.
机译:具有良好定义和可控形态的贵金属纳米晶体对于催化,等离激元学和表面增强光谱学中的应用非常重要。已经证明了许多合成方法可用于控制金属纳米晶体的生长习性,从而控制其形态,但是大多数方法是基于热力学方法的,包括使用封端剂。尽管热力学控制已显示出其在产生具有多种不同形态的纳米晶体中的威力,但最终它受到最小化系统表面能的义务的限制。结果,使用热力学控制来产生具有高能小面和/或负曲率的纳米晶体是不切实际的。以铑为例,在这里我们演示了一种基于动力学控制的通用方法,该方法采用注射泵,可以潜在地扩展到其他贵金属甚至其他固体材料。第一次,我们能够通过简单地控制将前体添加到反应溶液中的注入速率,以高收率生产具有立方对称性的{110}小面和八足体的大部分纳米凹面。具有{110}刻面的凹面纳米立方体以及表面上独特的腔结构对于各种应用而言都很重要。

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