Kobashi Kazufumi, Yoon Howon, Ata Seisuke, Yamada Takeo, Futaba Don N, Hata Kenji
National Institute of Advanced Industrial Science and Technology (AIST), CNT-Application Research Center, Tsukuba, Japan.
Technology Research Association for Single Wall Carbon Nanotubes (TASC), Tsukuba Central 5, 1-1-1 Higashi, Tsukuba, Ibaraki, 305-8565, Japan.
Nanoscale Res Lett. 2017 Dec 6;12(1):616. doi: 10.1186/s11671-017-2384-2.
We propose a porosimetry-based method to characterize pores formed by carbon nanotubes (CNTs) in the CNT agglomerates for designing neat CNT-based materials and composites. CNT agglomerates contain pores between individual CNTs and/or CNT bundles (micropore < 2 nm, mesopores 2-50 nm, and macropores > 50 nm). We investigated these pores structured by CNTs with different diameters and number of walls, clarifying the broader size distribution and the larger volume with increased diameters and number of walls. Further, we demonstrated that CNT agglomerate structures with different bulk density were distinguished depending on the pore sizes. Our method also revealed that CNT dispersibility in solvent correlated with the pore sizes of CNT agglomerates. By making use of these knowledge on tailorable pores for CNT agglomerates, we successfully found the correlation between electrical conductivity for CNT rubber composites and pore sizes of CNT agglomerates. Therefore, our method can distinguish diverse CNT agglomerate structures and guide pore sizes of CNT agglomerates to give high electrical conductivity of CNT rubber composites.
我们提出了一种基于孔隙率测定法的方法,用于表征碳纳米管(CNT)团聚体中由碳纳米管形成的孔隙,以设计纯碳纳米管基材料和复合材料。碳纳米管团聚体在单个碳纳米管和/或碳纳米管束之间存在孔隙(微孔<2纳米、中孔2 - 50纳米和大孔>50纳米)。我们研究了由不同直径和壁数的碳纳米管构成的这些孔隙,明确了随着直径和壁数增加,孔隙尺寸分布更宽且体积更大。此外,我们证明了具有不同堆积密度的碳纳米管团聚体结构可根据孔隙尺寸进行区分。我们的方法还表明,碳纳米管在溶剂中的分散性与碳纳米管团聚体的孔隙尺寸相关。通过利用这些关于碳纳米管团聚体可定制孔隙的知识,我们成功发现了碳纳米管橡胶复合材料的电导率与碳纳米管团聚体孔隙尺寸之间的相关性。因此,我们的方法能够区分不同的碳纳米管团聚体结构,并引导碳纳米管团聚体的孔隙尺寸,以赋予碳纳米管橡胶复合材料高电导率。