Jiang Degang, Zhang Jizhen, Qin Si, Hegh Dylan, Usman Ken Aldren S, Wang Jinfeng, Lei Weiwei, Liu Jingquan, Razal Joselito M
Institute for Frontier Materials, Deakin University, Geelong, Victoria 3216, Australia.
College of Materials Science and Engineering, Institute for Graphene Applied Technology Innovation, Qingdao University, Ningxia Road 308, Qingdao 266071, China.
ACS Appl Mater Interfaces. 2021 Nov 3;13(43):51333-51342. doi: 10.1021/acsami.1c13808. Epub 2021 Oct 25.
High aspect ratio two-dimensional TiCT MXene flakes with extraordinary mechanical, electrical, and thermal properties are ideal candidates for assembling elastic and conductive aerogels. However, the scalable fabrication of large MXene-based aerogels remains a challenge because the traditional preparation method relies on supercritical drying techniques such as freeze drying, resulting in poor scalability and high cost. Herein, the use of porous melamine foam as a robust template for MXene/reduced graphene oxide aerogel circumvents the volume shrinkage during its natural drying process. Through this approach, we were able to produce large size (up to 600 cm) MXene-based aerogel with controllable shape. In addition, the aerogels possess an interconnected cellular structure and display resilience up to 70% of compressive strain. Some key features also include high solvent absorption capacity (∼50-90 g g), good photothermal conversion ability (an average evaporation rate of 1.48 kg m h for steam generation), and an excellent electrothermal conversion rate (1.8 kg m h at 1 V). More importantly, this passive drying process provides a scalable, convenient, and cost-effective approach to produce high-performance MXene-based aerogels, demonstrating the feasibility of commercial production of MXene-based aerogels toward practical applications.
具有优异机械、电学和热学性能的高纵横比二维TiCT MXene薄片是组装弹性导电气凝胶的理想候选材料。然而,大规模制备基于MXene的大型气凝胶仍然是一个挑战,因为传统的制备方法依赖于冷冻干燥等超临界干燥技术,导致可扩展性差且成本高。在此,使用多孔三聚氰胺泡沫作为MXene/还原氧化石墨烯气凝胶的坚固模板,避免了其在自然干燥过程中的体积收缩。通过这种方法,我们能够制备出形状可控的大尺寸(长达600厘米)基于MXene的气凝胶。此外,这些气凝胶具有相互连接的蜂窝状结构,在高达70%的压缩应变下仍具有弹性。一些关键特性还包括高溶剂吸收能力(约50-90克/克)、良好的光热转换能力(蒸汽产生时的平均蒸发速率为1.48千克/平方米·小时)以及优异的电热转换率(在1伏电压下为1.8千克/平方米·小时)。更重要的是,这种被动干燥过程为制备高性能的基于MXene的气凝胶提供了一种可扩展、方便且经济高效的方法,证明了基于MXene的气凝胶商业化生产用于实际应用的可行性。