Lee Tung-Chun, Alarcón-Correa Mariana, Miksch Cornelia, Hahn Kersten, Gibbs John G, Fischer Peer
Max Planck Institute for Intelligent Systems, Heisenbergstrasse 3, 70569 Stuttgart, Germany.
Nano Lett. 2014 May 14;14(5):2407-12. doi: 10.1021/nl500068n. Epub 2014 Apr 11.
Motility in living systems is due to an array of complex molecular nanomotors that are essential for the function and survival of cells. These protein nanomotors operate not only despite of but also because of stochastic forces. Artificial means of realizing motility rely on local concentration or temperature gradients that are established across a particle, resulting in slip velocities at the particle surface and thus motion of the particle relative to the fluid. However, it remains unclear if these artificial motors can function at the smallest of scales, where Brownian motion dominates and no actively propelled living organisms can be found. Recently, the first reports have appeared suggesting that the swimming mechanisms of artificial structures may also apply to enzymes that are catalytically active. Here we report a scheme to realize artificial Janus nanoparticles (JNPs) with an overall size that is comparable to that of some enzymes ∼30 nm. Our JNPs can catalyze the decomposition of hydrogen peroxide to water and oxygen and thus actively move by self-electrophoresis. Geometric anisotropy of the Pt-Au Janus nanoparticles permits the simultaneous observation of their translational and rotational motion by dynamic light scattering. While their dynamics is strongly influenced by Brownian rotation, the artificial Janus nanomotors show bursts of linear ballistic motion resulting in enhanced diffusion.
生命系统中的运动性归因于一系列复杂的分子纳米马达,这些纳米马达对于细胞的功能和存活至关重要。这些蛋白质纳米马达不仅在随机力的作用下运行,而且正是由于随机力才得以运行。实现运动性的人工方法依赖于在粒子上建立的局部浓度或温度梯度,这会导致粒子表面的滑移速度,从而使粒子相对于流体运动。然而,目前尚不清楚这些人工马达是否能在最小尺度下起作用,在这个尺度上布朗运动占主导,并且找不到主动推进的生物体。最近,首次有报道表明人工结构的游动机制也可能适用于具有催化活性的酶。在此,我们报告了一种实现人工Janus纳米粒子(JNP)的方案,其整体尺寸与某些酶(约30纳米)相当。我们的JNP可以催化过氧化氢分解为水和氧气,从而通过自电泳实现主动移动。Pt-Au Janus纳米粒子的几何各向异性使得通过动态光散射能够同时观察到它们的平移和旋转运动。虽然它们的动力学受到布朗旋转的强烈影响,但人工Janus纳米马达显示出线性弹道运动的爆发,从而导致扩散增强。