You Yuxin, Golestani Youssef M, Astam Mert O, Liu Danqing
Human Interactive Materials (HIM), Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, Groene Loper 3, Eindhoven, 5612AE, The Netherlands.
Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, Groene Loper 3, Eindhoven, 5612AE, The Netherlands.
Small. 2025 Sep;21(35):e2503444. doi: 10.1002/smll.202503444. Epub 2025 Jun 16.
Intelligent membranes promise transformative advances in real-time control of substance permeation, surpassing current technologies through their intrinsic adaptability to environmental stimuli. In this work, a material-regulated approach to dynamically control substance permeation, such as gas, using hybrid bilayer membranes composed of gold-coated liquid crystal oligomer networks (Au-LCONs), is established. Thermally driven LCON actuation induces a stress mismatch at the LCON-Au interface that cracks the Au layer, effectively opening "gates" in the impermeable Au to allow gas transport through the membrane; this reversible effect can be precisely controlled with temperature, facilitating the use of this system for triggering gas-mediated chemical reactions on demand. Furthermore, switchable gas transport can be localized by the patterned Au coating on LCONs, restricting gas flow and chemical reactions to designated areas. This work paves the way for advancing intelligent materials for applications with precise and switchable substance permeability requirements, such as environmental monitoring, drug delivery, preservation systems, and filtration technologies.
智能膜有望在物质渗透的实时控制方面取得变革性进展,凭借其对环境刺激的固有适应性超越现有技术。在这项工作中,建立了一种材料调控方法,用于动态控制诸如气体等物质的渗透,该方法使用由金涂层液晶低聚物网络(Au-LCONs)组成的混合双层膜。热驱动的LCON致动在LCON-Au界面处引起应力失配,使金层开裂,有效地在不可渗透的金中打开“门”,以允许气体透过膜传输;这种可逆效应可以通过温度精确控制,便于该系统用于按需触发气体介导的化学反应。此外,可切换的气体传输可以通过在LCONs上的图案化金涂层进行定位,将气流和化学反应限制在指定区域。这项工作为推进具有精确和可切换物质渗透性要求的应用的智能材料铺平了道路,这些应用包括环境监测、药物递送、保存系统和过滤技术。