Mousavian Saman, Ariana Mohammad Amin, Mansourizadeh Amir, Lau Woei Jye
Department of Chemical Engineering, Gachsaran Branch, Membrane Science and Technology Research Center (MSTRC), Islamic Azad University, Gachsaran, Iran.
Department of Civil Engineering, Apadana Institute of Higher Education, Shiraz, 7187985443, Iran.
Sci Rep. 2024 Dec 5;14(1):30285. doi: 10.1038/s41598-024-81850-9.
Carbon dioxide (CO) is responsible for increment of the Earth surface temperature and the subsequent environmental issues. In this regard, membrane contactor is one of the emerging technologies that can be applied for controlling CO emission. More specifically, the intrinsic structure of membrane plays an important role to govern the performance of CO absorption. In this study, considering stretching ratio (SR) as a key factor to affect membrane structural properties, highly porous poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP) hollow fiber membranes were fabricated by a non-solvent induced phase separation method. The results showed that the membrane dimension and thickness were significantly reduced by optimizing the SR. The optimum membrane structure was found at SR of 1.5 where the mean pore size, CO permeance, collapsing pressure and liquid entry pressure of 0.032 μm, 3440 GPU, 550 kPa and 500 kPa were achieved, respectively. The prepared membranes showed open structure with overall porosity of more than 80%. The upgraded membrane at SR of 1.5 presented the maximum CO absorption flux of 9.8 × 10 mol/m s and the minimum mass transfer resistance of 49,544 (m/s). Furthermore, a stable CO absorption performance was achieved during 80 h continuous operation with a flux decline of only about 9%. The findings of this work demonstrated that by applying a cost-effective fabrication method, we can potentially enhance the PVDF-HFP membrane properties for CO adsorption without requiring an additional post-modification step.
二氧化碳(CO)是导致地球表面温度上升及后续环境问题的原因。在这方面,膜接触器是可用于控制CO排放的新兴技术之一。更具体地说,膜的固有结构对CO吸收性能起着重要的控制作用。在本研究中,将拉伸比(SR)视为影响膜结构性能的关键因素,采用非溶剂诱导相分离法制备了高度多孔的聚(偏二氟乙烯 - 共 - 六氟丙烯)(PVDF - HFP)中空纤维膜。结果表明,通过优化SR可显著减小膜的尺寸和厚度。在SR为1.5时发现了最佳膜结构,此时平均孔径、CO渗透率、塌陷压力和液体进入压力分别达到0.032μm、3440 GPU、550 kPa和500 kPa。所制备的膜呈现出开放结构,总孔隙率超过80%。SR为1.5时的升级膜表现出最大CO吸收通量为9.8×10 mol/m²·s,最小传质阻力为49544(m/s)。此外,在80小时的连续运行中实现了稳定的CO吸收性能,通量下降仅约9%。这项工作的研究结果表明,通过应用一种经济高效的制备方法,我们有可能在无需额外后处理步骤的情况下增强PVDF - HFP膜对CO的吸附性能。