Xie Pengbo, Ge Ying, Wang Yida, Zhou Jing, Miao Yuanyuan, Liu Zhenbo
Key Laboratory of Bio-Based Material Science and Technology of Ministry of Education, Northeast Forestry University, Harbin 150040, China.
Nanomaterials (Basel). 2022 Dec 8;12(24):4371. doi: 10.3390/nano12244371.
Traditional conductive materials do not meet the increasing requirements of electronic products because of such materials' high rigidity, poor flexibility, and slow biodegradation after disposal. Preparing flexible conductive materials with excellent mechanical properties is an active area of research. The key to flexible conductive materials lies in the combination of the polymer matrix and conductive components. This combination can be achieved by making a film of renewable nano-microcrystalline cellulose (NCC) and reduced graphene oxide (rGO) with excellent electrical conductivity-by simple filtration and introducing polyethylene glycol (PEG) to enhance the functionality of the composite film. Graphene imparted conductivity to the composite film, which reached 5.67 S·m. A reinforced NCC/rGO/PEG-4 composite film with a thickness of only 21 μm exhibited a tensile strength of 30.56 MPa, which was 83% higher than that of the sample without PEG (16.71 MPa), and toughness of 727.18 kJ·m, which was about 132% higher than that of the control sample (NCC/rGO, 313.86 kJ·m). This ultra-thin conductive composite film-which can be prepared simply, consists of environmentally sustainable and biodegradable raw materials, and exhibits excellent mechanical properties-has substantial potential for applications in e.g., flexible electronic wearable devices, electrodes, and capacitors.
传统的导电材料由于其高刚性、差的柔韧性以及在处理后缓慢的生物降解性,无法满足电子产品日益增长的需求。制备具有优异机械性能的柔性导电材料是一个活跃的研究领域。柔性导电材料的关键在于聚合物基体与导电组分的结合。通过简单过滤制备具有优异导电性的可再生纳米微晶纤维素(NCC)和还原氧化石墨烯(rGO)薄膜,并引入聚乙二醇(PEG)来增强复合薄膜的功能,就可以实现这种结合。石墨烯赋予复合薄膜导电性,其电导率达到5.67 S·m。一种厚度仅为21μm的增强型NCC/rGO/PEG - 4复合薄膜的拉伸强度为30.56 MPa,比不含PEG的样品(16.71 MPa)高83%,韧性为727.18 kJ·m,比对照样品(NCC/rGO,313.86 kJ·m)高约132%。这种超薄导电复合薄膜制备简单,由环境可持续且可生物降解的原材料组成,并具有优异的机械性能,在例如柔性电子可穿戴设备、电极和电容器等方面具有巨大的应用潜力。