Brouzet Christophe, Mittal Nitesh, Söderberg L Daniel, Lundell Fredrik
Linné FLOW Centre, KTH Mechanics, KTH Royal Institute of Technology, Stockholm SE-100 44, Sweden.
Wallenberg Wood Science Center, KTH Royal Institute of Technology, Stockholm SE-100 44, Sweden.
ACS Macro Lett. 2018 Aug 21;7(8):1022-1027. doi: 10.1021/acsmacrolett.8b00487. Epub 2018 Aug 6.
Successful assembly of suspended nanoscale rod-like particles depends on fundamental phenomena controlling rotational and translational diffusion. Despite the significant developments in fluidic fabrication of nanostructured materials, the ability to quantify the dynamics in processing systems remains challenging. Here we demonstrate an experimental method for characterization of the orientation dynamics of nanorod suspensions in assembly flows using orientation relaxation. This relaxation, measured by birefringence and obtained after rapidly stopping the flow, is deconvoluted with an inverse Laplace transform to extract a length distribution of aligned nanorods. The methodology is illustrated using nanocelluloses as model systems, where the coupling of rotational diffusion coefficients to particle size distributions as well as flow-induced orientation mechanisms are elucidated.
悬浮纳米级棒状颗粒的成功组装取决于控制旋转和平动扩散的基本现象。尽管纳米结构材料的流体制造取得了重大进展,但量化加工系统中动力学的能力仍然具有挑战性。在这里,我们展示了一种实验方法,用于通过取向弛豫来表征组装流中纳米棒悬浮液的取向动力学。这种弛豫通过双折射测量,并在快速停止流动后获得,通过逆拉普拉斯变换进行去卷积,以提取排列纳米棒的长度分布。使用纳米纤维素作为模型系统来说明该方法,其中阐明了旋转扩散系数与颗粒尺寸分布的耦合以及流动诱导的取向机制。