首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >X-ray Diffraction, Calorimetric, and Dielectric Relaxation Study of the Amorphous and Smectic States of a Main Chain Liquid Crystalline Polymer
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X-ray Diffraction, Calorimetric, and Dielectric Relaxation Study of the Amorphous and Smectic States of a Main Chain Liquid Crystalline Polymer

机译:主链液晶聚合物的非晶态和近晶态的X射线衍射,量热和介电弛豫研究

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摘要

Liquid crystalline polymers (LCPs) are complex systems that include features of both orientationally ordered mesophases and amorphous polymers. Frequently, the isotropic amorphous state cannot be studied due to the rapid mesophase formation. Here, a new main chain LCP, poly(triethyleneglycol methyl p,p'-bibenzoate), PTEMeB, has been synthesized. It shows a rather slow mesophase formation making possible to study independently both the amorphous and the liquid crystalline states. The structure and phase transitions of PTEMeB have been investigated by calorimetry, variable-temperature MAXS/WAXS employing synchrotron radiation, and X-ray diffraction in oriented fibers. These experiments have pointed out the presence of two glass transitions, related to the amorphous or to the liquid crystal phases. Additionally, the mesophase seems to be a coexistence of orthogonal and tilted smectic phases. A dielectric relaxation study of PTEMeB over broad ranges of temperature and pressure has been performed. The dynamic glass transition turns out to be slower for the amorphous state than for the liquid crystal. Monitoring of the a relaxation has allowed us to follow the isothermal mesophase formation at atmospheric pressure. Additionally, the dynamical behavior at high pressures has pointed out the fast formation of the mesophase induced by sudden pressure changes.
机译:液晶聚合物(LCP)是复杂的系统,既包含定向有序的中间相又包含无定形聚合物。通常,由于中间相的快速形成,各向同性非晶态无法研究。在这里,已经合成了新的主链LCP,聚(三乙二醇甲基对,p'-联苯甲酸酯)PTEMeB。它显示出相当缓慢的中间相形成,使得可以独立研究非晶态和液晶态。已通过量热法,采用同步辐射的可变温度MAXS / WAXS以及定向纤维中的X射线衍射研究了PTEMeB的结构和相变。这些实验指出了存在两种与非晶相或液晶相有关的玻璃化转变。另外,中间相似乎是正交和倾斜近晶相的并存。已经对PTEMeB在较宽的温度和压力范围内进行了介电弛豫研究。动态玻璃化转变对于非晶态来说要比对液晶要慢。弛豫的监测使我们能够追踪大气压下的等温中间相的形成。另外,高压下的动力学行为指出了由突然的压力变化引起的中间相的快速形成。

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