Liu Yida, Nakamura Daisuke, Gao Jubao, Imamura Kazushi, Aki Shoma, Nagai Yukiko, Taniguchi Ikuo, Fujiwara Kana, Horii Ryoga, Miura Yoshiko, Hoshino Yu
Department of Chemical Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan.
Department of Electrical Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan.
ACS Appl Mater Interfaces. 2024 Jun 5;16(22):29112-29120. doi: 10.1021/acsami.4c01260. Epub 2024 May 18.
Although thin-film composite membranes have achieved great success in CO separation, further improvements in the CO permeance are required to reduce the size and cost of the CO separation process. Herein, we report the fabrication of composite membranes with high CO permeability using a laser-patterned porous membrane as the support membrane. High-aspect-ratio micropatterns with well-defined micropores on their surface were carved on microporous polymer supports by a direct laser writing process using a short-pulsed laser. By using a Galvano scanner and optimizing the laser conditions and target materials, in-plane micropatterns, such as microhole arrays, microline grating, microlattices, and out-of-plane hierarchical micropatterns, were created on porous membranes. An aqueous suspension of hydrogel microparticles doped with an amine-based mobile carrier was sprayed onto the patterned surface to form a defect-free thin separation layer. The surface area of the separation layer on the patterned support is up to 80% larger than that of flat pristine membranes, resulting in a 52% higher CO permeance (1106 GPU) with a CO/N selectivity of 172. The laser-patterned porous membranes allow the development of inexpensive and high-performance functional membranes not only for CO separation but also for other applications, such as water treatment, cell culture, micro-TAS, and membrane reactors.
尽管薄膜复合膜在CO分离方面已取得巨大成功,但仍需要进一步提高CO渗透率,以减小CO分离过程的规模并降低成本。在此,我们报道了以激光图案化多孔膜为支撑膜制备具有高CO渗透性的复合膜。通过使用短脉冲激光的直接激光写入工艺,在微孔聚合物支撑体上刻蚀出表面具有明确微孔的高纵横比微图案。通过使用振镜扫描器并优化激光条件和靶材,在多孔膜上创建了平面内微图案,如微孔阵列、微线光栅、微晶格,以及平面外分级微图案。将掺杂有胺基移动载体的水凝胶微粒的水悬浮液喷涂到图案化表面上,以形成无缺陷的薄分离层。图案化支撑体上分离层的表面积比平整的原始膜大80%,从而使CO渗透率提高52%(1106 GPU),CO/N选择性为172。激光图案化多孔膜不仅可用于开发用于CO分离的廉价且高性能的功能膜,还可用于其他应用,如水处理、细胞培养、微全分析系统和膜反应器。