Huang Pan, Sun Yongxiang, Yang Lin, Yang Haoyu, Hu Ying, Liu Jifang, Peng Xuwen, Zeng Hongbo
Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Alberta T6G 1H9, Canada.
Heavy Machinery Engineering Research Center of Education Ministry, Taiyuan University of Science and Technology, Taiyuan 030024, China.
Research (Wash D C). 2024 Oct 29;7:0512. doi: 10.34133/research.0512. eCollection 2024.
Improving the adsorption efficiency of porous adsorbent materials for organic liquids with high viscosity is crucial for addressing oil spill incidents. In this study, a high-performance aerogel adsorbent composed of polyimide (PI), hydroxyapatite nanowires (HAPnws), and reduced graphene oxide (rGO) has been fabricated, which leverages reduced flow tortuosity through anisotropic structures and solar-assisted viscosity reduction via photothermal materials. The prepared anisotropic PI/HAP/rGO aerogel, with directional channels, shows unique mechanical properties with high stiffness along the axial direction and compressibility along the radial direction. PI/HAP/rGO, featuring vertically aligned channels, demonstrated superior adsorption efficiency (the adsorption coefficient reached 0.37 kg m s for an engine oil with a viscosity of ~144 mPa·s) for oil of varying viscosities compared to similar aerogels with uniform pores, because of the substantially reduced flow tortuosity. The photothermal properties of rGO further enhance the adsorption speed of PI/HAP/rGO for viscous oil under sunlight, including crude oil with ultrahigh viscosity. In addition, PI/HAP/rGO exhibits excellent fire resistance, allowing for reusability via both adsorption-compression and adsorption-combustion cycles. The robust and compressible PI/HAP/rGO aerogels with high adsorption efficiency for viscous oil and fire resistance represent an ideal solution for practical oil spill treatment, and this approach also offers inspiration for the development of advanced adsorbent materials.
提高多孔吸附材料对高粘度有机液体的吸附效率对于应对石油泄漏事故至关重要。在本研究中,制备了一种由聚酰亚胺(PI)、羟基磷灰石纳米线(HAPnws)和还原氧化石墨烯(rGO)组成的高性能气凝胶吸附剂,该吸附剂利用各向异性结构降低流体迂曲度,并通过光热材料实现太阳能辅助降低粘度。制备的具有定向通道的各向异性PI/HAP/rGO气凝胶表现出独特的机械性能,轴向具有高刚度,径向具有可压缩性。与具有均匀孔隙的类似气凝胶相比,具有垂直排列通道的PI/HAP/rGO对不同粘度的油表现出优异的吸附效率(对于粘度约为144 mPa·s的发动机油,吸附系数达到0.37 kg m s),这是因为流体迂曲度大幅降低。rGO的光热性能进一步提高了PI/HAP/rGO在阳光下对粘性油(包括超高粘度原油)的吸附速度。此外,PI/HAP/rGO具有优异的耐火性,可通过吸附-压缩和吸附-燃烧循环实现可重复使用。具有对粘性油高吸附效率和耐火性的坚固且可压缩的PI/HAP/rGO气凝胶是实际石油泄漏处理的理想解决方案,这种方法也为先进吸附材料的开发提供了灵感。