Tabe Yuka, Yokoyama Hiroshi
Nanotechnology Research Institute, National Institute of Advanced Industrial Science and Technology, and Yokoyama Nano-structured Liquid Crystal Project, Japan Science and Technology Corporation, Tsukuba, Ibaraki 305-8568, Japan.
Nat Mater. 2003 Dec;2(12):806-9. doi: 10.1038/nmat1017. Epub 2003 Nov 16.
Successful attempts to manufacture synthetic molecular motors have recently been reported. However, compared with natural systems such as motor proteins, synthetic motors are smaller molecules and are therefore subject to thermal fluctuations that prevent them from performing any useful function. A mechanism is needed to amplify the single molecular motion to such a level that it becomes distinguishable from the thermal background. Condensation of molecular motors into soft ordered phases (such as liquid crystals) will be a feasible approach, because there is evidence that they support molecularly driven non-equilibrium motions. Here we show that a chiral liquid-crystalline monolayer spread on a glycerol surface acts as a condensed layer of molecular rotors, which undergo a coherent molecular precession driven by the transmembrane transfer of water molecules. Composed of simple rod-like molecules with chiral propellers, the monolayer exhibits a spatiotemporal pattern in molecular orientations that closely resembles 'target patterns' in Belousov-Zhabotinsky reactions. Inversion of either the molecular chirality or the transfer direction of water molecules reverses the rotation direction associated with switching from expanding to converging target patterns. Endowed only with the soft directional order, the liquid crystal is an optimal medium that helps molecular motors to manifest their individual motions collectively.
最近有报道称成功制造出了合成分子马达。然而,与诸如马达蛋白等天然系统相比,合成马达是较小的分子,因此容易受到热涨落的影响,这使得它们无法执行任何有用的功能。需要一种机制将单个分子运动放大到可与热背景区分开来的水平。将分子马达凝聚成软有序相(如液晶)将是一种可行的方法,因为有证据表明它们支持分子驱动的非平衡运动。在此,我们展示了铺展在甘油表面的手性液晶单层充当分子转子的凝聚层,这些分子转子经历由水分子跨膜转移驱动的相干分子进动。该单层由带有手性螺旋桨的简单棒状分子组成,在分子取向上呈现出一种时空图案,与贝洛索夫 - 扎博京斯基反应中的“靶图案”极为相似。分子手性或水分子转移方向的反转会使与从扩展靶图案切换到收敛靶图案相关的旋转方向反转。仅具有软定向序的液晶是一种最佳介质,有助于分子马达集体展现其个体运动。