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首页> 外文期刊>ACS Omega >Versatile Controls of Microdomain Morphologies and Temperature Dependencies in Lamellar Spacing by Blending Diblock Copolymers Bearing Antisymmetric Compositions
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Versatile Controls of Microdomain Morphologies and Temperature Dependencies in Lamellar Spacing by Blending Diblock Copolymers Bearing Antisymmetric Compositions

机译:通过混合带有反对称成分的嵌段共聚物来控制层状间距中的微区形态和温度依赖性

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The morphologies of the microphase-separated structures in the binary blends of diblock copolymers (AB/AB) have been studied intensively for the case of diblock copolymers bearing antisymmetric compositions with similar molecular weights. Here, the two diblock copolymers 1 and 2, of which compositions are 0.5 – x and 0.5 + x (0 < x < 0.5), respectively, were blended, and the morphology diagram was constructed in the plot of χZ vs the average composition of the A component, where χ is the interaction parameter between A and B segments and Z is the average degree of polymerization of the two AB diblock copolymers. The temperature-dependent morphologies were analyzed by synchrotron small-angle X-ray scattering (SAXS) measurements. It was found that the morphology diagram agrees in principle with the theoretical one for the neat AB diblocks by Matsen and Bates (Macromolecules 1996 , 29 , 1091–1098), although the disordered phase was a bit expanded in the experimentally determined morphology diagram. Anomalous temperature dependencies in the lamellar spacing have been also comprehensively studied for the binary blends of antisymmetric diblock copolymers as a function of the degree of compositional asymmetry by closely adjusting the average composition in the blend specimen at 0.50. For this purpose, more than 20 neat diblock copolymers have been synthesized with a wide range of compositions from 0.20 to 0.87 and a range of molecular weight of 12?000–33?800. The temperature dependencies of the lamellar spacing were also analyzed by synchrotron SAXS measurements. As a result, the following things were found. The scaling exponent α in D ~ T ~(α) was still negative but slightly larger than the usual value (i.e., α = ?0.33) for the smaller degree of asymmetry in the composition (i.e., x is small), while α became positive for the higher degree of asymmetry. The latter result is very anomalous because the temperature dependence is opposite (i.e., the lamellar spacing increases with an increase of temperature). The value of α was found to be linearly rationalized with the degree of asymmetry τ (which is especially introduced in the current paper for this purpose), for the binary blends with the average composition of 0.50. Based on this result, one can prepare lamellar microdomains, of which spacing does not change with temperature, by blending two diblock copolymers with τ = 1.33 (corresponding to 0.3 and 0.7 of compositions) having similar molecular weights. This would be important for manufacturing materials with properties (for instance, the optical property) independent of temperature. From the current study, the binary blends of the antisymmetric diblock copolymers are concluded to be versatile such that the precise controls of the morphologies and the temperature dependencies of the lamellar microdomains are plausible.
机译:对于具有相似分子量的反对称组合物的二嵌段共聚物的情况,已经对二嵌段共聚物的二元共混物(AB / AB)中的微相分离结构的形态进行了深入研究。在这里,将两种分别为0.5 – ix和0.5 + ix(0 x <0.5)的二嵌段共聚物1和2混合,并在其中构建了形态图。 χZ与A组分的平均组成的关系图,其中χ是A和B链段之间的相互作用参数,Z是两种AB二嵌段共聚物的平均聚合度。通过同步加速器小角度X射线散射(SAXS)测量来分析温度相关的形态。发现形态图在原理上与Matsen和Bates( Macromolecules 1996, 29,1091-1098)的纯AB二嵌段的理论图基本一致。在实验确定的形态图中进行了扩展。还通过紧密调节共混物样品的平均组成为0.50,对反对称二嵌段共聚物的二元共混物的层状间距中的温度异常进行了综合研究,该二元共混物是组成不对称度的函数。为此,已经合成了20多种纯净的二嵌段共聚物,其组成范围从0.20到0.87,分子量范围为12?000-33?800。层间距的温度依赖性还通过同步加速器SAXS测量进行了分析。结果,发现了以下情况。 D〜 T〜(α)中的缩放指数α仍为负,但比组成中的较小不对称度(即 > x很小),而α对于较高的不对称度变为正。后一种结果非常反常,因为温度依赖性相反(即,层间距随着温度的升高而增加)。对于平均组成为0.50的二元共混物,发现α的值随不对称度τ线性地合理化(为此目的在本论文中特别介绍)。基于这一结果,可以通过将两种具有相似分子量的τ= 1.33的二嵌段共聚物(分别对应于组成的0.3和0.7)掺混来制备间距不随温度变化的层状微区。这对于制造具有与温度无关的特性(例如,光学特性)的材料将是重要的。根据目前的研究,可以得出反对称二嵌段共聚物的二元共混物具有通用性,因此可以合理地控制层状微区的形貌和温度依赖性。

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