Tang Chengning, Zhu Yuying, Bai Haoyu, Li Guoqiang, Liu Jiasong, Wu Weiming, Yang Yi, Xuan Sensen, Yin Huan, Chen Zuqiao, Lai Lin, Song Yuegan, Cao Moyuan, Qiu Bensheng
School of Manufacture Science and Engineering, Key Laboratory of Testing Technology for Manufacturing Process, Ministry of Education, Southwest University of Science and Technology, Mianyang 621010, P. R. China.
Center for Biomedical Imaging, University of Science and Technology of China, Hefei 230027, Anhui, P. R. China.
ACS Appl Mater Interfaces. 2023 Oct 25;15(42):49762-49773. doi: 10.1021/acsami.3c10211. Epub 2023 Oct 16.
Spontaneous separation of immiscible organic droplets has substantial research implications for environmental protection and resource regeneration. Compared to the widely explored separation of oil-water mixtures, there are fewer reports on separating mixed organic droplets on open surfaces due to the low surface tension differences. Efficient separation of mixed organic liquids by exploiting the rapid spontaneous transport of droplets on open surfaces remains a challenge. Here, through the fusion of inspiration from the fast droplet transport capability of Sarracenia trichome and the asymmetric wedge channel structure of shorebird beaks, this work proposes a spine with hierarchical microchannels and wedge channels (SHMW). Due to the synergistic effect of capillary force and asymmetric Laplace force, the SHMW can rapidly separate mixed organic droplets into two pure phases without requiring additional energy. In particular, the self-spreading of the oil solution on the open channel surface is utilized to amplify the surface energy difference between two droplets, and SHMW achieves the pickup of oil droplets floating on the surface of the organic solution. The maximum separation efficiency on 3-SHMW can reach 99.63%, and it can also realize the antigravity separation of mixed organic droplets with a surface tension difference as low as 0.87 mN·m. Furthermore, SHMW performs controllable separation, oil droplet pickup, and continuous separation and collection of mixed organic droplets. It is expected that this cooperative structure composed of hierarchical microchannels and wedge channels will be realized in resource recovery or chemical reactions in industrial production processes.
互不相溶有机液滴的自发分离对环境保护和资源再生具有重大研究意义。与广泛研究的油水混合物分离相比,由于表面张力差异小,关于在开放表面分离混合有机液滴的报道较少。利用开放表面上液滴的快速自发传输来高效分离混合有机液体仍然是一个挑战。在此,通过融合捕蝇草腺毛的快速液滴传输能力和滨鸟喙的不对称楔形通道结构的灵感,这项工作提出了一种具有分级微通道和楔形通道的脊结构(SHMW)。由于毛细力和不对称拉普拉斯力的协同作用,SHMW能够快速将混合有机液滴分离成两个纯相,无需额外能量。特别地,利用油溶液在开放通道表面的自铺展来放大两个液滴之间的表面能差,SHMW实现了对漂浮在有机溶液表面的油滴的拾取。3-SHMW上的最大分离效率可达99.63%,并且它还能实现表面张力差低至0.87 mN·m的混合有机液滴的抗重力分离。此外,SHMW能够进行可控分离、油滴拾取以及对混合有机液滴的连续分离和收集。预计这种由分级微通道和楔形通道组成的协同结构将在工业生产过程中的资源回收或化学反应中得以实现。