Shi Runfeng, Zhang Jiankang, Yang Jinheng, Xu Yanglei, Li Cuihuan, Chen Sheng, Xu Feng
Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, China.
State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, China.
Materials (Basel). 2022 Apr 13;15(8):2840. doi: 10.3390/ma15082840.
The aim of this study is to realize the controlled construction and modulation of micro-/nanostructures of conductive composite materials (CCMs) in a facile way. Herein, interdigital electrodes are prepared by direct-ink-write printing co-blended inks made of ethyl cellulose and carbon nanotubes on cellulose paper. The cellulose nanofibers (CFs) are prepared by electrospinning cellulose acetate on to an aluminum foil, followed by deacetylation in NaOH/ethanol. All co-blended inks exhibit a typical non-Newtonian shear thinning behavior, enabling smooth extrusion and printing. The above electrodes and the conductive CF films with excellent thermal stability are assembled into a pressure sensor, which has a high sensitivity (0.0584 KPa) to detect the change in external loading pressure. The obtained porous CFs film is further endowed with conductivity by in situ polymerization of polypyrrole (PPy), which are uniformly distributed on the CFs surface as particles; a triboelectric nanogenerator is constructed by using the CF@PPy film as a tribo-positive friction layer to achieve efficient energy harvesting (output voltage = 29.78 V, output current = 2.12 μA). Therefore, the construction of CCMs with micro-/nanostructures based on cellulose derivatives have essential application prospects in emerging high-tech fields, such as green electronics for sensing and energy harvesting.
本研究的目的是以简便的方式实现导电复合材料(CCMs)微/纳米结构的可控构建与调控。在此,通过在纤维素纸上直接喷墨打印由乙基纤维素和碳纳米管制成的共混墨水来制备叉指电极。通过将醋酸纤维素静电纺丝到铝箔上,然后在NaOH/乙醇中进行脱乙酰化来制备纤维素纳米纤维(CFs)。所有共混墨水均表现出典型的非牛顿剪切变稀行为,从而能够实现平滑挤出和打印。将上述电极与具有优异热稳定性的导电CF薄膜组装成压力传感器,该传感器对检测外部加载压力的变化具有高灵敏度(0.0584 KPa)。通过聚吡咯(PPy)的原位聚合进一步赋予所得多孔CFs薄膜导电性,PPy以颗粒形式均匀分布在CFs表面;以CF@PPy薄膜作为摩擦正摩擦层构建摩擦纳米发电机,以实现高效的能量收集(输出电压 = 29.78 V,输出电流 = 2.12 μA)。因此,基于纤维素衍生物构建具有微/纳米结构的CCMs在新兴高科技领域,如用于传感和能量收集的绿色电子学中具有重要的应用前景。