材料科学
纳米技术
逐层
图层(电子)
原位
剪切(地质)
剪切流
流量(数学)
复合材料
机械
物理
气象学
作者
Chuanjiang He,Zhiguo Zhang,Wenqi Teng,Zhi Fang,Wei-Shuyi Ruan,Guowu Liu,Hui Chen,Jian Sun,Lanlan Hui,Feng Sheng,Dingyi Pan,Chunming Yang,Yi Zheng,Meng‐Bo Luo,Ke Yao,Ben Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-02-18
被引量:8
标识
DOI:10.1021/acsnano.8b08151
摘要
Layer-by-layer (LbL) assembly is widely applied as a coating technique for the nanoscale control of architecture and related properties. However, its translational applications are limited by the time-consuming and laborious nature of the process. Inspired by the blood-clotting process, herein, we develop a shear-flow-driven LbL (SF-LbL) self-assembly approach that accelerates the adsorption rate of macromolecules by mechanically configuring the polymer chain via a coil-stretch transition, which effectively simplifies and speeds the diffusion-controlled assembly process. The structural characteristics and surface homogeneity of the SF-LbL films are improved, and diverse three-dimensional structures can be achieved. Functional SF-LbL-assembled surfaces for corneal modification are successfully fabricated, and the surface of wounded rat corneas and skin can be directly decorated in situ with SF-LbL nanofilms due to the advantages of this approach. Furthermore, in situ SF-LbL self-assembly has promise as a simple approach for the wound dressing for interventional therapeutics in the clinic, as illustrated by the successful in situ fabrication of drug-free layers consisting of chitosan and heparin on the dorsal skin of diabetic mice to rescue defective wound healing. This bioinspired self-assembly approach is expected to provide a robust and versatile platform with which to explore the surface engineering of nanofilms in science, engineering, and medicine.
科研通智能强力驱动
Strongly Powered by AbleSci AI