Lin Chih-Ting, Kao Ming-Tse, Kurabayashi Katsuo, Meyhöfer Edgar
Department of Electrical Engineering and Computer Science, University of Michigan, 48109, USA.
Small. 2006 Feb;2(2):281-7. doi: 10.1002/smll.200500153.
Current MEMS and microfluidic designs require external power sources and actuators, which principally limit such technology. To overcome these limitations, we have developed a number of microfluidic systems into which we can seamlessly integrate a biomolecular motor, kinesin, that transports microtubules by extracting chemical energy from its aqueous working environment. Here we establish that our microfabricated structures, the self-assembly of the bio-derived transducer, and guided, unidirectional transport of microtubules are ideally suited to create engineered arrays for efficiently powering nano- and microscale devices.
当前的微机电系统(MEMS)和微流体设计需要外部电源和致动器,这在很大程度上限制了此类技术的发展。为了克服这些限制,我们开发了一系列微流体系统,在这些系统中,我们可以无缝集成一种生物分子马达——驱动蛋白,它通过从其水性工作环境中提取化学能来运输微管。在此,我们证实,我们的微纳加工结构、生物衍生换能器的自组装以及微管的引导式单向运输,非常适合用于创建工程阵列,从而有效地为纳米和微米级设备供电。