Ratnaweera Rivi J, Rodríguez Ortiz Freddy A, Gripp Nicholas J, Sheldon Matthew T
Department of Chemistry, Texas A&M University, College Station, Texas 77843-3255, United States.
Department of Materials Science & Engineering, Texas A&M University, College Station, Texas 77843-3255, United States.
ACS Nano. 2022 Mar 22;16(3):3834-3842. doi: 10.1021/acsnano.1c08488. Epub 2022 Feb 21.
Aligning large populations of colloidal nanorods (NRs) into ordered assemblies provides a strategy for engineering macroscopic functional materials with strong optical anisotropy. The bulk optical properties of such systems depend not only on the individual NR building blocks but also on their meso- and macroscale ordering, in addition to more complex interparticle coupling effects. Here, we investigate the dynamic alignment of colloidal CdSe/CdS NRs in the presence of AC electric fields by measuring concurrent changes in optical transmission. Our work identifies two distinct scales of interaction that give rise to the field-driven optical response: (1) the spontaneous mesoscale self-assembly of colloidal NRs into structures with increased optical anisotropy and (2) the macroscopic ordering of NR assemblies along the direction of the applied AC field. By modeling the alignment of NR ensembles using directional statistics, we experimentally quantify the maximum degree of order in terms of the average deviation angle relative to the field axis. Results show a consistent improvement in alignment as a function of NR concentration─with a minimum average deviation of 36.2°─indicating that mesoscale assembly helps facilitate field-driven alignment of colloidal NRs.
将大量胶体纳米棒(NRs)排列成有序组装体,为工程化具有强光学各向异性的宏观功能材料提供了一种策略。这类系统的整体光学性质不仅取决于单个NR构建单元,还取决于它们的介观和宏观尺度有序性,以及更复杂的粒子间耦合效应。在此,我们通过测量光透射率的同步变化,研究了在交流电场存在下胶体CdSe/CdS NRs的动态排列。我们的工作确定了导致场驱动光学响应的两种不同相互作用尺度:(1)胶体NRs自发地介观自组装成具有增强光学各向异性的结构;(2)NR组装体沿外加交流电场方向的宏观有序排列。通过使用方向统计对NR集合的排列进行建模,我们根据相对于场轴的平均偏差角,通过实验量化了最大有序度。结果表明,排列随NR浓度的增加而持续改善,平均最小偏差为36.2°,这表明介观组装有助于促进胶体NRs的场驱动排列。