论文标题
短而柔软:多域组织,可调动力学和在悬挂的悬挂式胶体圆柱体的悬架中
Short and soft: multi-domain organization, tunable dynamics and jamming in suspensions of grafted colloidal cylinders with small aspect ratio
论文作者
论文摘要
研究了几乎尚未开发的具有较小纵横比的软胶体杆类,并显示出非常丰富的相位和动态行为,从液体到几乎熔体状态。这些短和软纳米固定器不是列表,而是通过各向同性液体的浓度越来越浓度以随机取向改变其组织,并以优选的局部取向,最终具有局部定向顺序的多域布置。后者产生了类似于结构玻璃的动力学抑制状态,并具有可检测的末端弛豫,在浓度越来越多的情况下,它揭示了六角形堆积的特征,如有序的块共聚物中。各自的动态响应包括四个方案,全部高于0.02 g/ml的重叠浓度:i)从0.03到0.1 g/mol,系统经历了液体到固体的液体 - 固体,例如结构放松时间,其结构放松时间以四个幅度级增长。 ii)从0.1至0.2 g/ml观察到急剧减速,并伴随着从各向同性到多域结构的进化。 iii)在0.2至0.6 g/mol之间,悬浮液表现出壳互穿和干扰的特征,根据浓度线性,胶体高原模量与胶体高原模量。 iv)在密集堵塞的状态下,在0.74 g/mL处,检测到来自显微合体分离的块共聚物的六角形堆积缸的粘弹性特征。这些特性将短和软纳米固定器与长胶体杆(具有较高的纵横比)不同,并提供了见解,以从根本上了解这种中间软胶体状态的物理,以及定制非球形软胶体的流动性能。
The yet virtually unexplored class of soft colloidal rods with small aspect ratio is investigated and shown to exhibit a very rich phase and dynamic behavior, spanning from liquid to nearly melt state. Instead of nematic order, these short and soft nanocylinders alter their organization with increasing concentration from isotropic liquid with random orientation to one with preferred local orientation and eventually a multi-domain arrangement with local orientational order. The latter gives rise to a kinetically suppressed state akin to structural glass with detectable terminal relaxation, which, on increasing concentration reveals features of hexagonally packed order as in ordered block copolymers. The respective dynamic response comprises four regimes, all above the overlapping concentration of 0.02 g/ml: I) from 0.03 to 0.1 g/mol the system undergoes a liquid-to-solid like transition with a structural relaxation time that grows by four orders of magnitude. II) from 0.1 to 0.2 g/ml a dramatic slowing-down is observed and is accompanied by an evolution from isotropic to multi-domain structure. III) between 0.2 and 0.6 g/mol the suspensions exhibit signatures of shell interpenetration and jamming, with the colloidal plateau modulus depending linearly on concentration. IV) at 0.74 g/ml in the densely jammed state, the viscoelastic signature of hexagonally packed cylinders from microphase-separated block copolymers is detected. These properties set short and soft nanocylinders apart from long colloidal rods (with large aspect ratio) and provide insights for fundamentally understanding the physics in this intermediate soft colloidal regime, as well as and for tailoring the flow properties of non-spherical soft colloids.