Pirela Valentina, Elgoyhen Justine, Tomovska Radmila, Martín Jaime, Le Cuong Minh Quoc, Chemtob Abraham, Bessif Brahim, Heck Barbara, Reiter Günter, Müller Alejandro J
POLYMAT and Department of Polymers and Advanced Materials: Physics, Chemistry, and Technology, Faculty of Chemistry, University of the Basque Country UPV/EHU, Paseo Manuel de Lardizabal 3, Donostia-San Sebastián 20018, Spain.
IKERBASQUE, Basque Foundation for Science, Plaza Euskadi 5, Bilbao 48009, Spain.
ACS Appl Polym Mater. 2023 Jun 9;5(7):5260-5269. doi: 10.1021/acsapm.3c00684. eCollection 2023 Jul 14.
A complex crystallization behavior was observed for the alternating copolymer DMDS--DVE synthesized via thiol-ene step-growth polymerization. Understanding the underlying complex crystallization processes of such innovative polythioethers is critical for their application, for example, in polymer coating technologies. These alternating copolymers have polymorphic traits, resulting in different phases that may display distinct crystalline structures. The copolymer DMDS--DVE was studied in an earlier work, where only two crystalline phases were reported: a low melting, L - , and high melting, H - phase. Remarkably, the H - form was only achieved by the previous formation and melting of the L - form. We applied calorimetric techniques encompassing seven orders of magnitude in scanning rates to further explore this complex polymorphic behavior. Most importantly, by rapidly quenching the sample to temperatures well below room temperature, we detected an additional polymorphic form (characterized by a very low melting phase, denoted VL - ). Moreover, through tailored thermal protocols, we successfully produced samples containing only one, two, or all three polymorphs, providing insights into their interrelationships. Understanding polymorphism, crystallization, and the resulting morphological differences can have significant implications and potential impact on mechanical resistance and barrier properties.
通过硫醇-烯逐步聚合反应合成的交替共聚物DMDS-DVE表现出复杂的结晶行为。了解此类创新型聚硫醚潜在的复杂结晶过程对于其应用(例如在聚合物涂层技术中的应用)至关重要。这些交替共聚物具有多晶型特性,会形成不同的相,这些相可能呈现出不同的晶体结构。共聚物DMDS-DVE在早期的一项研究中已有涉及,当时仅报道了两个晶相:低熔点的L-相和高熔点的H-相。值得注意的是,H-相只能通过先形成L-相然后使其熔化才能得到。我们应用了扫描速率涵盖七个数量级的量热技术来进一步探究这种复杂的多晶型行为。最重要的是,通过将样品快速淬火至远低于室温的温度,我们检测到了另一种多晶型形式(其特征是具有极低熔点的相,记为VL-)。此外,通过定制的热程序,我们成功制备了仅包含一种、两种或所有三种多晶型的样品,从而深入了解了它们之间的相互关系。了解多晶型、结晶以及由此产生的形态差异对于机械抗性和阻隔性能可能具有重大影响和潜在作用。