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Light-driven transformation processes of anisotropic silver nanoparticles

机译:各向异性银纳米粒子的光驱动转变过程

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The photoinduced formation of silver nanoprisms from smaller silver seed particles in the presence of citrate anions is a classic example of a photomorphic reaction. In this case, light is used as a convenient tool to dynamically manipulate the shape of metal nanoparticles. To date, very little is known about the prevailing reaction mechanism of this type of photoreaction. Here we provide a detailed study of the shape transformation dynamics as a function of a range of different process parameters, such as photon energy and photon flux. For the first time, we provide direct evidence that the photochemical synthesis of silver nanoprisms from spherical seed nanoparticles proceeds via a light-activated two-dimensional coalescence mechanism. On the other hand, we could show that Ostwald ripening becomes the dominant reaction mechanism when larger silver nanoprisms are grown from photochemically synthesized smaller nanoprisms. This two-step reaction proceeds significantly faster and yields more uniform, sharper nanoprisms than the classical one-step photodevelopment process from seeds. The ability to dynamically control nanoparticle shapes and properties with light opens up novel synthesis avenues but also, more importantly, allows one to conceive new applications that exploit the nonstatic character of these nanoparticles and the ability to control and adjust their properties at will in a highly dynamic fashion.
机译:在柠檬酸根阴离子的存在下由较小的银种子颗粒光诱导形成银纳米棱镜是光致变态反应的经典示例。在这种情况下,将光用作动态处理金属纳米粒子形状的便捷工具。迄今为止,对这种光反应的主要反应机理知之甚少。在这里,我们对形状变换动力学作为一系列不同过程参数(例如光子能量和光子通量)的函数进行了详细研究。首次,我们提供了直接的证据,表明从球形种子纳米粒子进行光化学合成银纳米棱镜是通过光激活的二维聚结机制进行的。另一方面,我们可以证明,当从光化学合成的较小纳米棱镜中生长出较大的银纳米棱镜时,奥斯特瓦尔德熟化成为主要的反应机理。与经典的一步式种子显影工艺相比,这种两步反应进行的速度明显更快,并且产生更均匀,更锐利的纳米棱镜。动态利用光控制纳米粒子形状和特性的能力开辟了新的合成途径,但更重要的是,它允许人们构思出利用这些纳米粒子的非静态特性以及高度随意控制和调整其特性的能力的新应用。动态时尚。

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