Department of Chemical Engineering & Technology, IIT (BHU), Varanasi 221005, U.P., India; Mahamana Innovative Technologies Welfare Society, Nawabganj, Bareilly 262406, U.P., India; Bineswar Brahma Engineering College, Chandrapara, Kokrajhar 783370, Assam, India.
Mahamana Innovative Technologies Welfare Society, Nawabganj, Bareilly 262406, U.P., India.
Carbohydr Polym. 2018 Jun 1;189:218-228. doi: 10.1016/j.carbpol.2018.02.029. Epub 2018 Feb 12.
In this paper, we are presenting the preparation and characterization of "polyaniline/multiwalled carbon nanotubes/carboxymethyl cellulose" based novel composite material. It's morphological, thermal, structural, and electrochemical properties were investigated by using different instrumental techniques. During the in-situ chemical polymerization of aniline in the aqueous suspension of CMC and MWCNTs, the particle size change in two different ways "top to bottom" (low molecular weight oligomers grows in size) and "bottom to top" (long fibers of CMC fragmented in the reaction mixture). The combination of these two processes facilitated the fabrication of an integrated green-nano-composite material. In addition, a little amount of conductive nanofillers (MWCNTs) boosts the electrical and electrocatalytic properties of the material. Electron-rich centers of benzenoid rings exhibited π-π stacking with sp carbon of MWCNTs. CMC dominantly impact on the properties of PANI, negatively charged carboxylate group of CMC ionically bonded with protonated amine/imine. FTIR and Raman analysis confirmed that the material has dominated quinoid units and effective charge transfer. Hydroxyl and carboxyl groups and bonded water molecules of CMC results in a network of hydrogen bonds (which induced directional property). PANI/MWCNTs/CMC have nanobead-like structures (TEM analysis), large surface area, large pore volume, small pore diameter (BET and BJH studies) and good dispersion ability in the aqueous phase. Nanostructures of aligned PANI exhibited excellent electrochemical properties have attracted increasing attention. Modified carbon paste electrode was used for electrocatalytic detection of ascorbic acid (as a model analyte). The sensor exhibited a linear range 0.05 mM-5 mM, sensitivity 100.63 μA mM cm, and limit of detection 0.01 mM. PANI/MWCNTs/CMC is suitable nanocomposite material for apply electroactive/conducting ink and membrane (which could be used in electrochemical sensor applications).
本文介绍了一种基于"聚苯胺/多壁碳纳米管/羧甲基纤维素"的新型复合材料的制备和表征。采用不同的仪器技术研究了其形态、热、结构和电化学性能。在 CMC 和 MWCNTs 的水悬浮液中苯胺的原位化学聚合过程中,粒径以两种不同的方式变化:"自上而下"(低分子量的寡聚物增大)和"自下而上"(反应混合物中纤维素的长纤维断裂)。这两个过程的结合促进了整体绿色纳米复合材料的制备。此外,少量的导电纳米填料(MWCNTs)提高了材料的导电性和电催化性能。苯并环的富电子中心与 MWCNTs 的 sp 碳表现出π-π堆积。CMC 主要影响 PANI 的性质,CMC 的带负电荷的羧酸盐基团与质子化的胺/亚胺离子键合。FTIR 和 Raman 分析证实,该材料具有主导的醌型单元和有效的电荷转移。CMC 的羟基和羧基以及结合的水分子形成氢键网络(诱导各向异性)。PANI/MWCNTs/CMC 具有纳米珠状结构(TEM 分析)、大表面积、大孔体积、小孔径(BET 和 BJH 研究)和在水相中的良好分散能力。定向排列的 PANI 纳米结构表现出优异的电化学性能,引起了越来越多的关注。修饰后的碳糊电极用于电催化检测抗坏血酸(作为模型分析物)。传感器表现出 0.05 mM-5 mM 的线性范围、100.63 μA mM cm 的灵敏度和 0.01 mM 的检测限。PANI/MWCNTs/CMC 是一种适合的纳米复合材料,可用于应用电活性/导电油墨和膜(可用于电化学传感器应用)。