Biophysics and Soft Matter Laboratory, Department of Physics, Indian Institute of Technology, Kharagpur-721302, India.
Soft Matter. 2020 Aug 26;16(33):7778-7788. doi: 10.1039/d0sm00485e.
In a recent report, the fractal self-assembly of gold nanoparticles (AuNPs) having a directional feature was observed in the presence of visible light. Therein, the visible light, an external parameter, was suspected to be responsible for the directional feature. Herein, we investigate the intrinsic factors, the aspect size ratio p and the size a of AuNPs, in modulating the fractal characteristics of their self-assemblies. Through light scattering experiments and microscopic imaging, we demonstrate the transition of morphologies from fractal-like to cross-shaped in gold colloidal aggregates with particles having nearly spherical and ellipsoidal shapes, respectively. The transition indicates the competitive role of anisotropy and fluctuations in deciding the morphological characteristics of the aggregates. By taking noise-reduced diffusion-limited aggregation (NRDLA) as a model system, we address the shape and size induced noise of the particles in the colloidal systems which are prone to form fractal aggregates. We qualitatively relate the noise due to the particles having a distinct aspect size ratio p and size a with the noise reduction parameter m of NRDLA. The realistic nature of the experimental systems, where the particles of different p and a are present during the growth process, is incorporated by introducing the Gaussian noise reduction in diffusion-limited aggregation (DLA). The morphological phase transition in Gaussian noise reduced DLA is characterized, and its relevance for accounting the shape and size originated noise fluctuations during the fractal growth process is discussed. The results of the present study may be used for tailored applications of AuNPs in drug delivery, biomedicine, biosensing, and cancer nanotechnology.
在最近的一份报告中,观察到具有定向特征的金纳米粒子(AuNPs)的分形自组装在可见光存在下发生。在这其中,可见光作为外部参数,被怀疑是导致定向特征的原因。在这里,我们研究了内在因素,即 AuNPs 的纵横比 p 和尺寸 a,以调节它们自组装的分形特征。通过光散射实验和微观成像,我们证明了具有近球形和椭圆形形状的粒子的金胶体聚集体的形貌从分形样态到十字形的转变。这种转变表明各向异性和波动在决定聚集体形态特征方面的竞争作用。通过将降噪扩散限制聚集(NRDLA)作为模型系统,我们研究了胶体系统中容易形成分形聚集体的颗粒的形状和尺寸诱导噪声。我们定性地将由于具有明显纵横比 p 和尺寸 a 的颗粒引起的噪声与 NRDLA 的噪声减少参数 m 相关联。通过在扩散限制聚集(DLA)中引入高斯噪声减少,考虑到实验系统的实际性质,即不同 p 和 a 的颗粒在生长过程中存在。对高斯噪声减少的 DLA 中的形态相变进行了表征,并讨论了其在分形生长过程中对形状和尺寸起源的噪声波动进行解释的相关性。本研究的结果可用于定制 AuNP 在药物输送、生物医学、生物传感和癌症纳米技术中的应用。