论文标题

粘合的直链和螺旋鞭毛丝形成超低密度玻璃

Bonded straight and helical flagellar filaments form ultra-low-density glasses

论文作者

Yardimci, Sevim, Gibaud, Thomas, Schwenger, Walter, Sartucci, Matthew R., Olmsted, Peter D., Urbach, Jeffrey S., Dogic, Zvonimir

论文摘要

我们研究刚性丝的三维形状如何决定纠缠半脱水的布朗尼悬浮液的微观动力学和宏观流变学。为了控制细丝形状,我们使用细菌鞭毛,这是从鞭毛蛋白单体组装的微米长螺旋。我们比较了直杆,螺旋丝和形状二嵌段的共聚物的动力学,由直线和螺旋段无缝连接在一起。由邻居笼罩的直杆优先沿其长轴扩散,但表现出明显抑制的旋转扩散。纠缠的螺旋细丝通过在其他细丝产生的密集障碍物中避开限制管。相比之下,杆状形状块的毗邻段抑制了翻译和开瓶器动力学,因此形状二嵌段在极低的密度极低的情况下永久堵塞。我们还测量了半浸泡悬浮液的流变特性,并将其机械性能与组成丝的显微动力学联系起来。尤其是,流变学表明,形状杆螺旋共聚物的纠缠悬浮液形成了低密度玻璃,可以通过考虑剪切变形如何减少约束细丝自由度的熵度来估算其弹性模量。我们的结果表明,刚性丝的三维形状可用于设计半脱水纤维悬浮液的流变特性。

We study how the three-dimensional shape of rigid filaments determines the microscopic dynamics and macroscopic rheology of entangled semi-dilute Brownian suspensions. To control the filament shape we use bacterial flagella, which are micron-long helices assembled from flagellin monomers. We compare the dynamics of straight rods, helical filaments, and shape diblock copolymers composed of seamlessly joined straight and helical segments. Caged by their neighbors, straight rods preferentially diffuse along their long axis, but exhibit significantly suppressed rotational diffusion. Entangled helical filaments escape their confining tube by corkscrewing through the dense obstacles created by other filaments. By comparison, the adjoining segments of the rod-helix shape-diblocks suppress both the translation and the corkscrewing dynamics, so that shape-diblocks become permanently jammed at exceedingly low densities. We also measure the rheological properties of semi-dilute suspensions and relate their mechanical properties to the microscopic dynamics of constituent filaments. In particular, rheology shows that an entangled suspension of shape rod-helix copolymers forms a low-density glass whose elastic modulus can be estimated by accounting for how shear deformations reduce the entropic degrees of freedom of constrained filaments. Our results demonstrate that the three-dimensional shape of rigid filaments can be used to design rheological properties of semi-dilute fibrous suspensions.

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