Department of Biomedical Sciences , City University of Hong Kong , Tat Chee Avenue , Kowloon , Hong Kong, China.
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry , Beihang University , Beijing 100191 , China.
ACS Nano. 2019 Sep 24;13(9):10596-10602. doi: 10.1021/acsnano.9b04771. Epub 2019 Sep 3.
Precise and robust manipulation of air bubbles will favor intense demands from governing processes of chemical reactions to enhancing transportation efficiency in multiphase engineering systems. Inspired by the working mechanism of mucous lining in lung alveoli, the elastic liquid-infused material (eLIM) is constructed by infiltrating an interconnected porous elastomer with a low-surface-energy lining liquid. With the help of the lining liquid, the pore pressure of the interconnected channels in eLIM can be reversibly regulated under mechanical stretching, balancing the capillary pressure in the channels with diverse radii and allowing gas flow in these channels. Therefore, air bubbles could be transported in and across the eLIM, showing on-demand control on the bubble contact angle, merging and splitting in an active and precise manner. The robust manipulation strategies on air bubbles can find applications in bioreactors and many other bubble-involved processes.
精确而稳健地操控气泡将有利于化学反应的控制过程提出更高的要求,以提高多相工程系统中的传输效率。受肺肺泡粘液衬里工作机制的启发,弹性液体注入材料(eLIM)通过将具有低表面能衬里液体的相互连通多孔弹性体注入而构建。在衬里液体的帮助下,eLIM 中的相互连通通道的孔隙压力可以在机械拉伸下进行可逆调节,使不同半径的通道中的毛细压力平衡,并允许气体在这些通道中流动。因此,气泡可以在 eLIM 中运输和穿过 eLIM,按需控制气泡的接触角,以主动和精确的方式进行合并和分裂。对气泡进行稳健的操控策略可以在生物反应器和许多其他涉及气泡的过程中得到应用。