Strugova Daria, Ferreira Junior José Carlos, David Éric, Demarquette Nicole R
Mechanical Engineering Department, École de Technologie Supérieure, Montréal, QC H3C 1K3, Canada.
Nanomaterials (Basel). 2021 Jun 21;11(6):1620. doi: 10.3390/nano11061620.
The effect of the crystallization of polypropylene (PP) forming an immiscible polymer blend with polystyrene (PS) containing conductive multi-wall carbon nanotubes (MWCNTs) on its electrical conductivity and electrical percolation threshold (PT) was investigated in this work. PP/PS/MWCNTs composites with a co-continuous morphology and a concentration of MWCNTs ranging from 0 to 2 wt.% were obtained. The PT was greatly reduced by a two-step approach. First, a 50% reduction in the PT was achieved by using the effect of double percolation in the blend system compared to PP/MWCNTs. Second, with the additional thermal treatments, referred to as slow-cooling treatment (with the cooling rate 0.5 °C/min), and isothermal treatment (at 135 °C for 15 min), ultra-low PT values were achieved for the PP/PS/MWCNTs system. A 0.06 wt.% of MWCNTs was attained upon the use of the slow-cooling treatment and 0.08 wt.% of MWCNTs upon the isothermal treatment. This reduction is attributed to PP crystals' volume exclusion, with no alteration in the blend morphology.
本研究考察了聚丙烯(PP)与含有导电多壁碳纳米管(MWCNT)的聚苯乙烯(PS)形成不混溶聚合物共混物时,其结晶对电导率和电渗流阈值(PT)的影响。制备了具有双连续形态且MWCNT浓度范围为0至2 wt.%的PP/PS/MWCNT复合材料。采用两步法可大幅降低PT。首先,与PP/MWCNT相比,通过利用共混体系中的双渗流效应,PT降低了50%。其次,通过额外的热处理,即慢冷处理(冷却速率为0.5℃/min)和等温处理(在135℃下处理15分钟),PP/PS/MWCNT体系实现了超低的PT值。慢冷处理时MWCNT的含量达到0.06 wt.%,等温处理时为0.08 wt.%。这种降低归因于PP晶体的体积排斥,而共混物形态未发生改变。