乙二醇
右旋糖酐
材料科学
微流控
纳米技术
化学工程
相(物质)
表面粗糙度
吞吐量
化学
复合材料
色谱法
计算机科学
有机化学
工程类
电信
无线
作者
Shauni Keller,Serena P. Teora,Guo Xun Hu,Marlies Nijemeisland,Daniela A. Wilson
标识
DOI:10.1002/anie.201805661
摘要
Abstract Micro‐ and nanomotors and their use for biomedical applications have recently received increased attention. However, most designs use top‐down methods to construct inorganic motors, which are labour‐intensive and not suitable for biomedical use. Herein, we report a high‐throughput design of an asymmetric hydrogel microparticle with autonomous movement by using a microfluidic chip to generate asymmetric, aqueous, two‐phase‐separating droplets consisting of poly(ethylene glycol) diacrylate (PEGDA) and dextran, with the biocatalyst placed in the PEGDA phase. The motor is propelled by enzyme‐mediated decomposition of fuel. The speed of the motors is influenced by the roughness of the PEGDA surface after diffusion of dextran and was tuned by using higher molecular weight dextran. This roughness allows for easier pinning of oxygen bubbles and thus higher speeds of the motors. Pinning of bubbles occurs repeatedly at the same location, thereby resulting in constant circular or linear motion.
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