4.8 Article

Biomimetic Fibrous Murray Membranes with Ultrafast Water Transport and Evaporation for Smart Moisture-Wicking Fabrics

期刊

ACS NANO
卷 13, 期 2, 页码 1060-1070

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b08242

关键词

biomimetic Murray network; surface energy gradient; microfibrous membranes; nanofibrous membranes; ultrafast water transport and evaporation; moisture wicking

资金

  1. National Natural Science Foundation of China [51503028, 51673037]
  2. Shanghai Rising-Star Program [16QA1400200]
  3. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning [TP2016019]
  4. Innovation Program of Shanghai Municipal Education Commission [2017-01-07-00-03-E00024]
  5. Fundamental Research Funds for the Central Universities [2232016A3-03]

向作者/读者索取更多资源

Both antigravity directional water transport and ultrafast evaporation are critical to achieving a high-performance moisture-wicking fabric. The transpiration in vascular plants possess both of these features, which is due to their optimized hierarchical structure composed of multibranching porous networks following Murray's law. However, it remains a great challenge to simultaneously realize the ultrafast water transport and evaporation by mimicking nature's Murray networks in the synthetic materials. Here, we report a synergistic assembly strategy to create a biomimetic micro- and nanofibrous membrane with antigravity directional water transport and quick-dry performance by combining a multibranching porous structure and surface energy gradient, overcoming previous limitations. The resulting fiber-based porous Murray membranes exhibit an ultrahigh one-way transport capability (R) of 1245%, a desired overall moisture management capability (OMMC) of 0.94, and an outstanding water evaporation rate of 0.67 g h(-1) (5.8 and 2.1 times higher than the cotton fabric and Coolmax fabric, respectively). Overall, the successful synthesis of these biomimetic porous Murray membranes should serve as a source of inspiration for the development of moisture-wicking technologies, providing personal comfort in hot or humid environments.

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