化学
材料科学
电压
纳米技术
生物物理学
化学工程
物理
生物
工程类
量子力学
作者
Yaozhen Yi,Haixu Dou,Jie Zhao,Ziting Liu,Shuilin Wu,Yuxiang Chen,Lizhi Xu,Changchao Zhang,Chaozong Liu,Shichao Niu,Zhiwu Han,Luquan Ren
出处
期刊:Nano Letters
[American Chemical Society]
日期:2024-11-27
卷期号:24 (49): 15806-15816
被引量:1
标识
DOI:10.1021/acs.nanolett.4c04777
摘要
Mechano-bactericidal strategies represent a safe and sustainable method for preventing microbial contamination in the postantibiotic era. However, their effectiveness against Gram-positive bacteria (≤55%) is still limited due to the thick peptidoglycan layer in their cell walls. Herein, an intelligent biomimetic nanopillared biopatch is developed. It is assisted by low-voltage (8 V) electrical stimulation from TENG and significantly enhances antibacterial efficacy (>99%) against three types of stubborn Gram-positive bacteria. These collaborative antibacterial behaviors are solely based on purely physical actions, thus avoiding the risk of triggering bacterial resistance. Moreover, the slight mechanical energy generated by human physiological activities is converted into a power source, exhibiting energy-efficient, eco-friendly, and sustainable features. The conductive hydrogel in the biopatch can also act as an intelligent temperature sensor, monitoring, and real-time assessment of wound conditions. This intelligent biopatch holds immense potential for efficient healing and safe management of both acute and chronic wound infections.
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