Nguyen Dang Du, Lim TaeGyeong, Lim Soomook, Suk Ji Won
School of Mechanical Engineering, Sungkyunkwan University, Suwon 16419, Gyeonggi-do, Korea.
Department of Smart Fab. Technology, Sungkyunkwan University, Suwon 16419, Gyeonggi-do, Korea.
Nanomaterials (Basel). 2021 Mar 29;11(4):865. doi: 10.3390/nano11040865.
The emergence of graphene paper comprising well-stacked graphene flakes has promoted the application of graphene-based materials in diverse fields such as energy storage devices, membrane desalination, and actuators. The fundamental properties of graphene paper such as mechanical, electrical, and thermal properties are critical to the design and fabrication of paper-based devices. In this study, the interlayer interactions in graphene paper were investigated by double cantilever beam (DCB) fracture tests. Graphene papers fabricated by flow-directed stacking of electrochemically exfoliated few-layer graphene flakes were mechanically separated into two parts, which generated force-displacement responses of the DCB sample. The analysis based on fracture mechanics revealed that the interlayer separation energy of the graphene paper was 9.83 ± 0.06 J/m. The results provided a fundamental understanding of the interfacial properties of graphene papers, which will be useful for developing paper-based devices with mechanical integrity.
由堆叠良好的石墨烯薄片组成的石墨烯纸的出现,推动了石墨烯基材料在储能设备、膜脱盐和致动器等多个领域的应用。石墨烯纸的基本性能,如机械性能、电学性能和热性能,对于纸基器件的设计和制造至关重要。在本研究中,通过双悬臂梁(DCB)断裂试验研究了石墨烯纸中的层间相互作用。通过对电化学剥离的少层石墨烯薄片进行流动定向堆叠制备的石墨烯纸被机械分离成两部分,这产生了DCB样品的力-位移响应。基于断裂力学的分析表明,石墨烯纸的层间分离能为9.83±0.06 J/m。这些结果为石墨烯纸的界面性能提供了基本认识,这将有助于开发具有机械完整性的纸基器件。