4.8 Article

Non-Fluorinated Flexible Superhydrophobic Surface with Excellent Mechanical Durability and Self-Cleaning Performance

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 3, 页码 4750-4758

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c21840

关键词

flexible surface; wrinkled pattern; superhydrophobic surface; mechanical stability; self-cleaning property

资金

  1. National Natural Science Foundation of China [12004088, 91963123]
  2. Ten Thousand Talents Plan of Zhejiang Province of China [2018R52003]
  3. Fundamental Research Funds for the Provincial University of Zhejiang [GK209907299001-014, GK199900299012-022]

向作者/读者索取更多资源

In this study, a non-fluorinated flexible superhydrophobic surface with excellent mechanical durability and self-cleaning performance was designed. The labyrinth-like wrinkles with micro-/nano-textured structures were the key to achieving outstanding superhydrophobicity and maintaining stability under mechanical deformation. This surface shows great potential for applications in flexible electronics, wearable devices, and biomedical engineering.
Although plenty of superhydrophobic surfaces have been developed owing to their tremendous potential applications, it is still a great challenge for the superhydrophobic surfaces to possess environmental friendliness, biocompatibility, and mechanical durability simultaneously. Herein, a non-fluorinated flexible superhydrophobic surface was designed by constructing a film-substrate system with labyrinth-like wrinkles combining an intrinsically hydrophobic Zn film and a polydimethylsiloxane (PDMS) substrate. Excellent superhydrophobicity with a contact angle up to 168.5 degrees and a slide angle as low as 0 degrees has been achieved on the Zn/PDMS surface, which is attributed to the micro-/nano-textured structures of the labyrinth-like wrinkles, providing sufficient air pockets to form a stable Cassie-Baxter state. Furthermore, the Zn/PDMS surface retains excellent superhydrophobicity under stretching, bending, and twisting mechanical deformation up to 500 cycles due to the stability of the micro-/nano-textured structures of the labyrinth-like wrinkles protected by the fantastic self-healing ability of the micro-cracks. Additionally, the Zn/PDMS superhydrophobic surface possesses an outstanding self-cleaning performance for various contaminants. The present work provides a valuable routine to design non-fluorinated flexible superhydrophobic surfaces with superb mechanical durability and self-cleaning property as promising functional layers for flexible electronics, wearable devices, biomedical engineering, and so forth.

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