Smolyanskii Alexander Sergeevich, Politova Ekaterina Dmitrievna, Koshkina Ol'ga Alekseevna, Arsentyev Mikhail Aleksandrovich, Kusch Pavel Prokof'evich, Moskvitin Lev Vladimirovich, Slesarenko Sergei Vital'evich, Kiryukhin Dmitrii Pavlovich, Trakhtenberg Leonid Izrailevich
High Energy Chemistry and Radioecology Department, D. Mendeleev University of Chemical Technology of Russia, Miusskaya Ploshchad 125047, Moscow, Russia.
Laboratory of Functional Nanocomposites, N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Science, Moscow 119991, Moscow, Russia.
Polymers (Basel). 2021 Oct 25;13(21):3678. doi: 10.3390/polym13213678.
By means of X-ray computed microtomography (XCMT), the existence of a developed porous structure with an average pore diameter of ~3.5 μm and pore content of ~1.1 vol.% has been revealed in unirradiated polytetrafluoroethylene (PTFE). It has been found that the combined action of gamma radiation (absorbed dose per PTFE of ~170 kGy) and high temperatures (327-350 °C) leads to the disappearance of the porous structure and the formation of several large pores with sizes from 30 to 50 μm in the bulk of thermal-radiation modified PTFE (TRM-PTFE). It has been established by X-ray diffraction (XRD) analysis that the thermal-radiation modification of PTFE leads to an increase in the interplanar spacings, the degree of crystallinity and the volume of the unit cell, as well as to a decrease in the size of crystals and the X-ray density of the crystalline phase in comparison with the initial polymer. It is assumed that the previously-established effect of improving the deformation-strength and tribological properties of the TRM-PTFE can be due not only to the radiation cross-linking of polymer chains but also to the disappearance of the pore system and to the ordering of the crystalline phase of PTFE.
通过X射线计算机显微断层扫描(XCMT)发现,未辐照的聚四氟乙烯(PTFE)中存在发达的多孔结构,平均孔径约为3.5μm,孔隙率约为1.1体积%。研究发现,γ辐射(PTFE的吸收剂量约为170 kGy)和高温(327 - 350°C)的联合作用导致多孔结构消失,并在热辐射改性聚四氟乙烯(TRM - PTFE)本体中形成几个尺寸为30至50μm的大孔。通过X射线衍射(XRD)分析确定,与初始聚合物相比,PTFE的热辐射改性导致晶面间距、结晶度和晶胞体积增加,以及晶体尺寸和结晶相的X射线密度减小。据推测,先前确定的TRM - PTFE的变形强度和摩擦学性能改善效应,可能不仅归因于聚合物链的辐射交联,还归因于孔隙系统的消失以及PTFE结晶相的有序化。