Suhr J, Joshi A, Schadler L, Kane R S, Koratkar N A
Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute, Troy, NY 12180, USA.
J Nanosci Nanotechnol. 2007 Apr-May;7(4-5):1684-7. doi: 10.1166/jnn.2007.455.
Single-walled carbon nanotube polycarbonate and C60 polycarbonate nanocomposites were fabricated using a solution mixing method. The composite loss modulus was characterized by application of dynamic (sinusoidal) load to the nanocomposite and the pure polymer samples. For a loading of 1 weight %, the single-walled nanotube fillers generated more than a 250% increase in loss modulus compared to the baseline (pure) polycarbonate. Even though the surface area to volume ratio and surface chemistry of C60 is similar to that for nanotubes, we report no significant increase in the energy dissipation for the 1% weight C60 nanoparticle composite compared to the pure polymer. We explain these observations by comparing qualitatively, the active sliding area (considering both normal and shear stresses) for a representative volume element of the nanotube and the nanoparticle composites. These results highlight the important role played by the filler geometry in controlling energy dissipation in nanocomposite materials.
采用溶液混合法制备了单壁碳纳米管聚碳酸酯和C60聚碳酸酯纳米复合材料。通过对纳米复合材料和纯聚合物样品施加动态(正弦)载荷来表征复合损耗模量。对于1重量%的负载量,与基线(纯)聚碳酸酯相比,单壁纳米管填料使损耗模量增加了250%以上。尽管C60的表面积与体积之比和表面化学性质与纳米管相似,但我们报告称,与纯聚合物相比,1%重量的C60纳米颗粒复合材料的能量耗散没有显著增加。我们通过定性比较纳米管和纳米颗粒复合材料代表性体积单元的有效滑动面积(考虑法向应力和剪应力)来解释这些观察结果。这些结果突出了填料几何形状在控制纳米复合材料能量耗散中所起的重要作用。