Maiz Jon, Verde-Sesto Ester, Asenjo-Sanz Isabel, Mangin-Thro Lucile, Frick Bernhard, Pomposo José A, Arbe Arantxa, Colmenero Juan
Centro de Física de Materiales (CFM) (CSIC-UPV/EHU)-Materials Physics Center (MPC), Paseo Manuel de Lardizábal 5, 20018 Donostia-San Sebastián, Spain.
IKERBASQUE-Basque Foundation for Science, Plaza Euskadi 5, 48009 Bilbao, Spain.
Macromolecules. 2022 Mar 22;55(6):2320-2332. doi: 10.1021/acs.macromol.1c02382. Epub 2022 Feb 28.
We have investigated an all-polymer nanocomposite (NC) consisting of single-chain nanoparticles (SCNPs) immersed in a matrix of linear chains of their precursors (25/75% composition in weight). The SCNPs were previously synthesized via "click" chemistry, which induces intramolecular cross-links in the individual macromolecules accompanied by a slight shift (5-8 K) of the glass transition temperature toward higher values and a broadening of the dynamic response with respect to the raw precursor material. The selective investigation of the dynamics of the NC components has been possible by using properly isotopically labeled materials and applying quasielastic neutron scattering techniques. Results have been analyzed in the momentum transfer range where the coherent scattering contribution is minimal, as determined by complementary neutron diffraction experiments with polarization analysis. We observe the development of dynamic heterogeneity in the intermediate scattering function of the NC components, which grows with increasing time. Local motions in the precursor matrix of the NC are accelerated with respect to the reference bulk behavior, while the displacements of SCNPs' hydrogens show enhanced deviations from Gaussian and exponential behavior compared with the pure melt of SCNPs. The resulting averaged behavior in the NC coincides with that of the pure precursor, in accordance with the macroscopic observations by differential scanning calorimetry (DSC) experiments.
我们研究了一种全聚合物纳米复合材料(NC),它由浸入其前体线性链基质中的单链纳米颗粒(SCNP)组成(重量组成为25/75%)。SCNP先前是通过“点击”化学合成的,这种化学方法会在单个大分子中诱导分子内交联,同时玻璃化转变温度会轻微向更高值偏移(5 - 8K),并且相对于原始前体材料,动态响应会变宽。通过使用适当的同位素标记材料并应用准弹性中子散射技术,对NC组分的动力学进行选择性研究成为可能。结果是在动量转移范围内分析的,在该范围内,由带有极化分析的互补中子衍射实验确定,相干散射贡献最小。我们观察到NC组分的中间散射函数中动态不均匀性的发展,它随时间增加而增长。相对于参考本体行为,NC前体基质中的局部运动加速,而与纯SCNP熔体相比,SCNP氢的位移显示出与高斯和指数行为的偏差增强。根据差示扫描量热法(DSC)实验的宏观观察结果,NC中产生的平均行为与纯前体的平均行为一致。