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Phase transition from disordered sphere to hex-cylinder via transient ordering into Bcc-sphere in SIS triblock copolymer

机译:SIS三嵌段共聚物中通过无序球到Bcc球的从无序球到六角圆柱的相变

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We have investigated the ordering processes from the disordered-sphere phase (designated hereafter disordered sphere), where spherical microdomains exist but they have only a short-range liquidlike order, to the phase of hexagonally packed cylindrical microdomains (designated hereafter hex-cylinder), induced by the temperature drop (T-drop). The block copolymer studied is a compositionally asymmetric polystyrene-block-polyisoprene-block-polystyrene triblock copolymer and forms disordered sphere above the order-disorder transition temperature involving the lattice disordering-ordering transition temperature, T-ODT or T-LDOT, spheres in a body-centered-cubic lattice (designated hereafter bcc-sphere) below T-LDOT but above the order-order transition (OOT) temperature, T-OOT, and hex-cylinder below T-OOT. The ordering processes induced by T-drop were explored in situ and at a real time by using time-resolved small-angle X-ray scattering, and the transient microdomain structures developed during the ordering processes were observed by a transmission electron microscope and a polarized optical microscope for specimens rapidly frozen below the glass transition temperature at particular times in the ordering processes. We confirmed that the freeze-in process does not change the long-range order of the system. When the specimen is deeply quenched into the temperature range below T-OOT, hex-cylinder is directly formed from disordered sphere. However, when the specimen is shallowly quenched below T-OOT, bcc-sphere is first formed from disordered sphere and fills the whole sample space. Then bcc-sphere is transformed into hex-cylinder. This striking ordering process first involves the ordering into a metastable structure followed by the OOT into a stable structure. [References: 80]
机译:我们研究了从存在球形微区但仅具有短程液体状序的无序球体相(以下称为无序球体)到六方堆积的圆柱微域(以下称六角圆柱)相的有序过程,由温度下降(T降)引起。所研究的嵌段共聚物是一种成分不对称的聚苯乙烯-嵌段-聚异戊二烯-嵌段-聚苯乙烯三嵌段共聚物,在高于有序-无序转变温度的条件下形成无序球,其中涉及晶格无序-有序转变温度T-ODT或T-LDOT。体心立方晶格(以下称为bcc球体)在T-LDOT下方,但在T-OOT以下的阶跃转变(OOT)温度,T-OOT和十六进制圆柱体上方。利用时间分辨小角度X射线散射原位和实时地研究了由T-drop引起的有序化过程,并用透射电子显微镜和偏振光观察了有序化过程中形成的瞬态微畴结构。光学显微镜,用于在订购过程中的特定时间将样品快速冻结在玻璃化转变温度以下。我们确认冻结过程不会改变系统的远程顺序。当样品深度淬火到低于T-OOT的温度范围时,六角圆柱体直接由无序球形成。但是,当样品在T-OOT以下进行浅淬火时,首先由无序球形成bcc球,并充满整个样品空间。然后将bcc-sphere转换为十六进制圆柱体。这种引人注目的排序过程首先涉及到将命令排序为亚稳态结构,然后将OOT排序为稳定结构。 [参考:80]

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