Zhou Anqi, Du Jing, Shi Yingxin, Wang Yue, Zhang Tianhao, Fu Qiuxia, Shan Haoru, Ji Tao, Xu Sijun, Liu Qixia, Ge Jianlong
National & Local Joint Engineering Research Center of Technical Fiber Composites for Safety and Health, School of Textile and Clothing, Nantong University, Nantong 226019, China.
National & Local Joint Engineering Research Center of Technical Fiber Composites for Safety and Health, School of Textile and Clothing, Nantong University, Nantong 226019, China.
J Colloid Interface Sci. 2024 Nov;673:860-873. doi: 10.1016/j.jcis.2024.06.126. Epub 2024 Jun 17.
Volatile organic compounds (VOCs) in the air pose great health risks to humans and the environment. Adsorptive separation technology has proven effective in mitigating VOC pollution, with the adsorbent being the critical component. Therefore, the development of highly efficient adsorbent materials is crucial. Carbon nanofibers, known for their physical-chemical stability and rapid adsorption kinetics, are promising candidates for removing VOCs from the air. However, the relatively simple porous structures and inert surface chemical properties of traditional carbon nanofibers present challenges in further enhancing their application performance further. Herein, a hierarchical porous carbon nanofibrous membrane was prepared using electrospinning technology and a one-step carbonization & activation method. Phenolic resin and polyacrylonitrile were used as co-precursors, with silica nanoparticles serving as the dopant. The resulting membrane exhibited a specific surface area of up to 1560.83 m/g and surfaces rich in functional O-/N- groups. With a synergistic effect of developed micro- and meso-pores and active chemical surfaces, the carbon nanofibrous membrane demonstrated excellent adsorption separation performance for various VOCs, with comparable adsorption capacities and fast kinetics. Moreover, the membrane displayed remarkable reusability and dynamic adsorption performance for different VOCs, indicating its potential for practical applications.
空气中的挥发性有机化合物(VOCs)对人类健康和环境构成巨大风险。吸附分离技术已被证明在减轻VOC污染方面有效,其中吸附剂是关键组件。因此,开发高效吸附剂材料至关重要。碳纳米纤维以其物理化学稳定性和快速吸附动力学而闻名,是从空气中去除VOCs的有前途的候选材料。然而,传统碳纳米纤维相对简单的多孔结构和惰性表面化学性质在进一步提高其应用性能方面存在挑战。在此,采用静电纺丝技术和一步碳化与活化方法制备了一种分级多孔碳纳米纤维膜。酚醛树脂和聚丙烯腈用作共前驱体,二氧化硅纳米颗粒用作掺杂剂。所得膜的比表面积高达1560.83 m/g,表面富含功能性O-/N-基团。通过发达的微孔和中孔以及活性化学表面的协同作用,碳纳米纤维膜对各种VOCs表现出优异的吸附分离性能,具有相当的吸附容量和快速动力学。此外,该膜对不同VOCs表现出显著的可重复使用性和动态吸附性能,表明其具有实际应用潜力。