Ning Xin, Jimenez Andrew M, Pribyl Julia, Li Shaohua, Benicewicz Brian, Kumar Sanat K, Schadler Linda S
Department of Materials Science and Engineering, Rensselaer Polytechnic Institute, Troy, New York 12180, United States.
Department of Chemical Engineering, Columbia University, New York, New York 10027, United States.
ACS Macro Lett. 2019 Oct 15;8(10):1341-1346. doi: 10.1021/acsmacrolett.9b00619. Epub 2019 Sep 27.
We investigate the crystallization-induced ordering of C grafted 14 nm diameter spherical silica nanoparticles (NPs) in a short chain ( = 4 kDa, ≈ 2.3) polyethylene and a commercial high-density polyethylene ( = 152 kDa, ≈ 3.2) matrix. For slow isothermal crystallization of the low molecular weight matrix, the NPs segregate into the interlamellar regions. This result establishes the generality of our earlier work on poly(ethylene oxide) based materials and suggests that crystallization can be used to control NP dispersion across different polymer classes. The incompatibility between the particles and the matrix in the = 152 kDa results in a competition between filler organization and filler agglomeration. The mechanical properties improve due to the addition of NPs and are further enhanced by particle organization, even for the case of the macrophase-separated mixtures in the = 152 kDa matrix. In contrast, dielectric behavior is strongly affected by the scale of NP organization, with the lower molecular weight matrix showing more significant increases in permittivity due to the local scale of NP ordering.
我们研究了接枝有C的直径为14纳米的球形二氧化硅纳米粒子(NPs)在短链(= 4 kDa,≈ 2.3)聚乙烯和商用高密度聚乙烯(= 152 kDa,≈ 3.2)基体中的结晶诱导有序化。对于低分子量基体的缓慢等温结晶,纳米粒子会偏析到片晶间区域。这一结果证实了我们早期关于聚环氧乙烷基材料研究的普遍性,并表明结晶可用于控制不同聚合物类别中纳米粒子的分散。在 = 152 kDa的体系中,粒子与基体之间的不相容性导致了填料组织与填料团聚之间的竞争。添加纳米粒子会使机械性能得到改善,并且即使对于 = 152 kDa基体中的宏观相分离混合物,粒子组织也会进一步增强机械性能。相比之下,介电行为受到纳米粒子组织尺度的强烈影响,由于纳米粒子有序化的局部尺度,低分子量基体的介电常数显示出更显著的增加。