Mouysset Dominique, Rollet Marion, Bloch Emily, Gastaldi Stéphane, Besson Eric, Phan Trang N T
Aix Marseille Univ, CNRS, Chemistry Department, Institute of Radical Chemistry (ICR), 13397 Marseille, France.
Aix Marseille Univ, CNRS, Chemistry Department, Laboratory of Divided Materials, Interfaces, Reactivity, Electrochemistry (MADIREL), 13397 Marseille, France.
Molecules. 2024 Dec 11;29(24):5832. doi: 10.3390/molecules29245832.
Nanocomposite materials composed of an organic matrix and an inorganic nanofiller have been the subject of intense research in recent years. Indeed, the synergy between these two phases confers improved properties thanks to an increased surface-volume ratio, which reinforces the interactions between the particles and the polymer matrix. These interactions depend on many factors such as the shape, size and dispersion of the nanoobjects. Polysilsesquioxanes (PSQs) are a silicon polymer family that offers different sizes, shapes and structures and possesses ceramics properties (i.e., high thermal and/or oxidative resistance and high chain rigidity), thanks to the siloxane backbone. In this article, we propose to incorporate polymer-grafted ladder polysilsesquioxanes (LPSQs) as nanofillers in thermoplastic matrices. Chloride-functionalized LPSQs were synthesized from two different precursors and thoroughly characterized by H, C and Si NMR, as well as by SEC and WAXS. The well-defined LPSQ was then converted into an azide analog. The resulting hybrid material was functionalized with poly(ethylene glycol) (PEG) chains and incorporated into poly(ethylene oxide) or poly(methyl methacrylate) matrices. We found that the viscoelastic properties of the nanocomposite materials were impacted by plasticizing or the reinforcement effect depending on the grafted PEG chain length.
由有机基体和无机纳米填料组成的纳米复合材料近年来一直是深入研究的主题。事实上,这两个相之间的协同作用由于增加的表面体积比而赋予了改进的性能,这增强了颗粒与聚合物基体之间的相互作用。这些相互作用取决于许多因素,如纳米物体的形状、大小和分散性。聚倍半硅氧烷(PSQ)是一类硅聚合物,由于其硅氧烷主链,具有不同的尺寸、形状和结构,并具有陶瓷性能(即高耐热性和/或抗氧化性以及高链刚性)。在本文中,我们建议将聚合物接枝的梯形聚倍半硅氧烷(LPSQ)作为纳米填料掺入热塑性基体中。由两种不同的前体合成了氯化物官能化的LPSQ,并通过H、C和Si NMR以及SEC和WAXS对其进行了全面表征。然后将定义明确的LPSQ转化为叠氮类似物。所得的杂化材料用聚乙二醇(PEG)链进行功能化,并掺入聚环氧乙烷或聚甲基丙烯酸甲酯基体中。我们发现,取决于接枝的PEG链长度,纳米复合材料的粘弹性性能受到增塑或增强效应的影响。