蒸腾作用
材料科学
伤口愈合
生物膜
加速度
伤口敷料
复合材料
医学
细菌
生物
植物
外科
物理
经典力学
光合作用
遗传学
作者
Zhicheng Zhang,Junjie Ma,Tao Xu,Tao Wang,Xueying Jia,Jiawei Lin,Chang Lv,Liang Cao,Yulong Ying,Lvlv Ji,Sheng Wang,Caiyun Fu
标识
DOI:10.1002/adhm.202401005
摘要
Abstract In chronic wound management, efficacious handling of exudate and bacterial infections stands as a paramount challenge. Here a novel biomimetic fabric, inspired by the natural transpiration mechanisms in plants, is introduced. Uniquely, the fabric combines a commercial polyethylene terephthalate (PET) fabric with asymmetrically grown 1D rutile titanium dioxide (TiO 2 ) micro/nanostructures, emulating critical plant features: hierarchically porous networks and hydrophilic water conduction channels. This structure endows the fabric with exceptional antigravity wicking‐evaporation performance, evidenced by a 780% one‐way transport capability and a 0.75 g h −1 water evaporation rate, which significantly surpasses that of conventional moisture‐wicking textiles. Moreover, the incorporated 1D rutile TiO 2 micro/nanostructures present solar‐light induced antibacterial activity, crucial for disrupting and eradicating wound biofilms. The biomimetic transpiration fabric is employed to drain exudate and eradicate biofilms in Staphylococcus aureus ( S. aureus )‐infected wounds, demonstrating a much faster infection eradication capability compared to clinically common ciprofloxacin irrigation. These findings illuminate the path for developing high‐performance, textile‐based wound dressings, offering efficient clinical platforms to combat biofilms associated with chronic wounds.
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