Cui Zehang, Zhang Yachao, Zhang Zhicheng, Liu Bingrui, Chen Yiyu, Wu Hao, Zhang Yuxuan, Cheng Zilong, Li Guoqiang, Yong Jiale, Li Jiawen, Wu Dong, Chu Jiaru, Hu Yanlei
CAS Key Laboratory of Mechanical Behavior and Design of Materials, Key Laboratory of Precision Scientific Instrumentation of Anhui Higher Education Institutes, Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei, 230027, China.
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, China.
Nat Commun. 2024 Feb 16;15(1):1443. doi: 10.1038/s41467-024-45926-4.
Despite their notable unidirectional water transport capabilities, Janus membranes are commonly challenged by the fragility of their chemical coatings and the clogging of open microchannels. Here, an on-demand mode-switching strategy is presented to consider the Janus functionality and mechanical durability separately and implement them by simply stretching and releasing the membrane. The stretching Janus mode facilitates unidirectional liquid flow through the hydrophilic micropores-microgrooves channels (PG channels) fabricated by femtosecond laser. The releasing protection mode is designed for the in-situ closure of the PG channels upon encountering external abrasion and impact. The protection mode imparts the Janus membrane robustness to reserve water unidirectional penetration under harsh conditions, such as 2000 cycles mechanical abrasion, 10 days exposure in air and other rigorous tests (sandpaper abrasion, finger rubbing, sand impact and tape peeling). The underlying mechanism of gridded grooves in protecting and enhancing water flow is unveiled. The Janus membrane serves as a fog collector to demonstrate its unwavering mechanical durability in harsh real-world conditions. The presented design strategy could open up new possibilities of Janus membrane in a multitude of applications ranging from multiphase separation devices to fog harvesting and wearable health-monitoring patches.
尽管Janus膜具有显著的单向水传输能力,但其化学涂层的脆弱性和开放微通道的堵塞问题通常会对其造成挑战。在此,我们提出了一种按需模式切换策略,将Janus功能和机械耐久性分开考虑,并通过简单地拉伸和释放膜来实现它们。拉伸Janus模式有助于单向液体流过由飞秒激光制造的亲水性微孔-微槽通道(PG通道)。释放保护模式旨在使PG通道在遇到外部磨损和冲击时原位关闭。该保护模式赋予Janus膜坚固性,使其在恶劣条件下(如2000次机械磨损、在空气中暴露10天以及其他严格测试(砂纸磨损、手指摩擦、沙粒冲击和胶带剥离))仍能保留水的单向渗透能力。揭示了网格状凹槽在保护和增强水流方面的潜在机制。Janus膜用作集雾器,以展示其在恶劣现实条件下坚定不移的机械耐久性。所提出的设计策略可为Janus膜在从多相分离装置到雾收集和可穿戴健康监测贴片等众多应用中开辟新的可能性。