Key Laboratory of Air-driven Equipment of Zhejiang Province, College of Mechanical Engineering, Quzhou University, Zhejiang 324000, China; State Key Laboratory of Pulp and Paper Engineering, School of Light Industry and Engineering, South China University of Technology, Guangzhou 510640, China.
Key Laboratory of Air-driven Equipment of Zhejiang Province, College of Mechanical Engineering, Quzhou University, Zhejiang 324000, China.
Int J Biol Macromol. 2020 Aug 1;156:1183-1190. doi: 10.1016/j.ijbiomac.2019.11.154. Epub 2019 Nov 19.
In this study, a series of conductive composite wires were successfully prepared by combining dispersions of multi-wall carbon nanotubes (MWCNTs) and TEMPO-oxidized cellulose nanofibers (TOCNFs) with different MWCNTs contents into a dispersion of partially deacetylated α-chitin nanofibers (α-DECHNs) followed with a drying process. The TOCNFs/MWCNTs/α-DECHNs composite wires were prepared by extruding the negatively charged TOCNFs/MWCNTs dispersion into the positively charged α-DECHNs dispersion. The contact of the positively charged α-DECHNs and the negatively charged TOCNFs/MWCNTs triggers the electrostatic interaction (heterocoagulation) resulting in wire-shaped conductive composites. The SEM analysis indicates this conductive composite material has a wire-like shape with a rough but tight surface. The properties of samples were characterized by a zeta potential analyzer (Zetasizer Nano), a four-probe, an electrochemical workstation, a Fourier transform infrared spectroscopy (FTIR), an X-ray diffractometer (XRD), and a thermogravimetric analyzer (TG). Besides, the conductivity and the AC impedance of TOCNFs/MWCNTs/α-DECHNs composite wires with different MWCNTs contents were also analyzed. The conductivity of the composite wire increases from 9.98 × 10 S∙cm to 1.56 × 10 S∙cm as the MWCNTs content raises from 3.0 wt% to 14.0 wt%. When the MWCNTs content reaches 14.0 wt%, the prepared composite wire can light up LED at a voltage of 5 V, indicating the great potential of this biomass-based conductive composite in conductive material application.
在这项研究中,通过将多壁碳纳米管(MWCNTs)和 TEMPO 氧化纤维素纳米纤维(TOCNFs)的分散体与不同含量的 MWCNTs 结合到部分脱乙酰α-壳聚糖纳米纤维(α-DECHNs)的分散体中,成功制备了一系列导电复合线。然后通过干燥过程。通过将带负电荷的 TOCNFs/MWCNTs 分散体挤出到带正电荷的α-DECHNs 分散体中来制备 TOCNFs/MWCNTs/α-DECHNs 复合线。带正电荷的α-DECHNs 和带负电荷的 TOCNFs/MWCNTs 的接触引发静电相互作用(异凝聚),导致形成线状导电复合材料。SEM 分析表明,这种导电复合材料具有线状形状,表面粗糙但紧密。通过zeta 电位分析仪(Zetasizer Nano)、四探针、电化学工作站、傅里叶变换红外光谱(FTIR)、X 射线衍射仪(XRD)和热重分析仪(TG)对样品的性能进行了表征。此外,还分析了不同 MWCNTs 含量的 TOCNFs/MWCNTs/α-DECHNs 复合线的导电性和交流阻抗。随着 MWCNTs 含量从 3.0wt%增加到 14.0wt%,复合线的电导率从 9.98×10-5S·cm 增加到 1.56×10-5S·cm。当 MWCNTs 含量达到 14.0wt%时,制备的复合线可以在 5V 电压下点亮 LED,表明这种基于生物质的导电复合材料在导电材料应用方面具有巨大的潜力。