压电
生物电子学
材料科学
聚乙烯醇
纳米技术
纳米发生器
生物医学工程
复合材料
生物传感器
医学
作者
Haoyue Xue,敬 島津,Zhi Tan,Keliang Chen,Gengxi Lu,Yushun Zeng,Xiaolin Hu,Xingchen Peng,Laiming Jiang,Jiagang Wu
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2024-05-31
卷期号:10 (22)
被引量:2
标识
DOI:10.1126/sciadv.adn0260
摘要
Biodegradable piezoelectric devices hold great promise in on-demand transient bioelectronics. Existing piezoelectric biomaterials, however, remain obstacles to the development of such devices due to difficulties in large-scale crystal orientation alignment and weak piezoelectricity. Here, we present a strategy for the synthesis of optimally orientated, self-aligned piezoelectric γ-glycine/polyvinyl alcohol (γ-glycine/PVA) films via an ultrasound-assisted process, guided by density functional theory. The first-principles calculations reveal that the negative piezoelectric effect of γ-glycine originates from the stretching and compression of glycine molecules induced by hydrogen bonding interactions. The synthetic γ-glycine/PVA films exhibit a piezoelectricity of 10.4 picocoulombs per newton and an ultrahigh piezoelectric voltage coefficient of 324 × 10 −3 volt meters per newton. The biofilms are further developed into flexible, bioresorbable, wireless piezo-ultrasound electrotherapy devices, which are demonstrated to shorten wound healing by ~40% and self-degrade in preclinical wound models. These encouraging results offer reliable approaches for engineering piezoelectric biofilms and developing transient bioelectronics.
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