Aspect Ratio Dependence of Isotropic-Nematic Phase Separation of Nanoplates in Gravity

Abhijeet Shinde, Xuezhen Wang, Yi-Hsien Yu, Zhengdong Cheng
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引用次数: 2

Abstract

Abstract We studied isotropic-nematic (I-N) phase separation via gravity sedimentation in suspensions of plate-like colloidal particles of identical thickness but different lateral sizes (diameters). It is well-known that I-N phase transition occurs at a higher concentration for particles with larger aspect ratio (thickness/diameter) than for particles with smaller aspect ratio. Here we report that for the larger aspect ratios of nanoplates, gravity-driven I-N phase separation is faster. In a homogenously mixed I-N biphasic suspension of nanoplates, nematic tactoids nucleate, grow, and then undergo sedimentation in gravity, leading to the formation of a clear horizontal interface between the I and N phase. For I-N coexistent suspension of nanoplates with different aspect ratios but the same amount of nematic fractions, the larger the aspect ratio, the faster the formation of nematic tactoids and interface between isotropic liquid and nematic liquid crystal phase. The tactoid formation rate is governed by the rotational and translational diffusion rates, which are faster at larger aspect ratios. The time required for I-N separation (t*, seconds) varies inversely with the mean aspect ratio (< ξ >) of nanoplates and follows the relation, t* = α < ξ >n, where α = 0.97 ± 1.30 s and n = −2.1 ± 0.2. The phase separation kinetics studied in our experiments offers guidance for the selection of aspect ratio of nanoplates for samples to be studied at the International Space Station (ISS).
重力作用下纳米片各向同性相分离的纵横比依赖性
摘要:本文研究了具有相同厚度但不同横向尺寸(直径)的板状胶体颗粒悬浮液的各向同性-向列相(I-N)重力沉降分离。众所周知,大长宽比(厚度/直径)的颗粒比小长宽比的颗粒发生的I-N相变浓度更高。在这里,我们报告了对于较大宽高比的纳米板,重力驱动的I-N相分离速度更快。在均匀混合的I-N双相纳米板悬浮液中,向列状拟合物成核、生长,然后在重力作用下沉降,导致I相和N相之间形成清晰的水平界面。对于不同纵横比、相同向列分量的I-N共存纳米片,纵横比越大,各向同性液体与向列液晶相界面的形成速度越快。粘突的形成速率受旋转和平动扩散速率的控制,在较大的长径比下,这两种扩散速率更快。I-N分离所需时间(t*,秒)与纳米片平均长径比(< ξ >)呈反比关系,t* = α < ξ >n,其中α = 0.97±1.30 s, n = - 2.1±0.2。本实验研究的相分离动力学为国际空间站研究样品的纳米片宽高比的选择提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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