Effect of the carbon nanotube size dispersity on the electrical properties and pressure sensing of the polymer composites

被引:0
作者
Khurram Shehzad
Tajamal Hussain
Asma Tufail Shah
Adnan Mujahid
Mirza Nadeem Ahmad
Rizwan ur Rahman Sagar
Tauseef Anwar
Syed Nasir
Ayaz Ali
机构
[1] Zhejiang University,Department of Information Technology and Electronics, College of Information Science and Electronic Engineering and State Key Laboratory of Silicon Materials
[2] University of the Punjab,Institute of Chemistry
[3] COMSATS Institute of Information Technology,Interdisciplinary Research Center in Biomedical Materials
[4] Government College University,Department of Chemistry
[5] Shenzhen University,College of Optoelectronic Engineering
[6] Tsinghua University,Beijing Key Lab of Fine Ceramics, Institute of Nuclear and New Energy Technology
[7] University of Management Sciences and Information Technology,Physics Department
来源
Journal of Materials Science | 2016年 / 51卷
关键词
Contact Resistance; Polymer Composite; Percolation Threshold; Filler Concentration; Polydisperse System;
D O I
暂无
中图分类号
学科分类号
摘要
Two different-diameter carbon nanotubes (CNTs), i.e., CNT-1 (diameter = 10–30 nm, length = 5–15 μm) and CNT-2 (diameter = 20–40 nm, length = 5–15 μm), were mixed in various relative concentrations to obtain series of hybrids with wider diameter disparity, which were subsequently melt blended with a polypropylene-based thermoplastic elastomer to fabricate their respective polymer composites. By changing the relative concentrations of CNTs in a polydisperse mixture, we were able to tune the percolation characteristics and the pressure–resistance sensitivity of the polymer composites. Percolation threshold, percolation window, and the minimum achievable resistivity value of the composites were found to be the function of relative concentration of CNTs in the polydisperse system. An important finding of this study is that percolation characteristics of composites with polydisperse system of CNTs prepared by mixing of two different CNTs with different relative concentrations can be explained by model of hybrid fillers. These findings may open a new pathway to design the conductive polymer composites with controlled electrical and sensing properties for various applications.
引用
收藏
页码:11014 / 11020
页数:6
相关论文
共 95 条
  • [1] He L(2015)Facile synthesis of silver-decorated reduced graphene oxide as a hybrid filler material for electrically conductive polymer composites RSC Adv 5 15070-373
  • [2] Tjong SC(2015)Electrically conductive polymers and composites for biomedical applications RSC Adv 5 37553-undefined
  • [3] Kaur G(2016)Effect of synthesis catalyst on structure of nitrogen-doped carbon nanotubes and electrical conductivity and electromagnetic interference shielding of their polymeric nanocomposites Carbon 98 358-undefined
  • [4] Adhikari R(2015)Graphene-reinforced carbon composite foams with improved strength and EMI shielding from sucrose and graphene oxide J Mater Sci 50 8018-undefined
  • [5] Cass P(2015)Designing of carbon nanotube/polymer composites using melt recirculation approach: effect of aspect ratio on mechanical, electrical and EMI shielding response Mater Des 88 269-undefined
  • [6] Bown M(2015)Excellent electromagnetic interference shielding and mechanical properties of high loading carbon-nanotubes/polymer composites designed using melt recirculation equipped twin-screw extruder Carbon 89 308-undefined
  • [7] Gunatillake P(2016)Electrical properties and conduction mechanism in carboxyl-functionalized multiwalled carbon nanotubes/poly (vinyl alcohol) composites J Mater Sci 51 2453-undefined
  • [8] Arjmand M(2016)Improving mechanical properties of high volume fraction aligned multi-walled carbon nanotube/epoxy composites by stretching and pressing Compos B Eng 85 15-undefined
  • [9] Chizari K(2016)Development and thermal properties of carbon nanotube-polymer composites Compos B Eng 89 362-undefined
  • [10] Krause B(2013)The effect of aspect ratio on the piezoresistive behavior of the multiwalled carbon nanotubes/thermoplastic elastomer nanocomposites J Appl Phys 113 014102-undefined