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控制纳米尺度的运动:分子机器的崛起。

Controlling Motion at the Nanoscale: Rise of the Molecular Machines.

机构信息

California NanoSystems Institute and Department of Chemistry & Biochemistry, University of California , Los Angeles, Los Angeles, California 90095, United States.

Department of Chemistry, McGill University , Montreal, QC, Canada.

出版信息

ACS Nano. 2015 Aug 25;9(8):7746-68. doi: 10.1021/acsnano.5b03367. Epub 2015 Aug 4.

Abstract

As our understanding and control of intra- and intermolecular interactions evolve, ever more complex molecular systems are synthesized and assembled that are capable of performing work or completing sophisticated tasks at the molecular scale. Commonly referred to as molecular machines, these dynamic systems comprise an astonishingly diverse class of motifs and are designed to respond to a plethora of actuation stimuli. In this Review, we outline the conditions that distinguish simple switches and rotors from machines and draw from a variety of fields to highlight some of the most exciting recent examples of opportunities for driven molecular mechanics. Emphasis is placed on the need for controllable and hierarchical assembly of these molecular components to display measurable effects at the micro-, meso-, and macroscales. As in Nature, this strategy will lead to dramatic amplification of the work performed via the collective action of many machines organized in linear chains, on functionalized surfaces, or in three-dimensional assemblies.

摘要

随着我们对分子内和分子间相互作用的理解和控制的发展,越来越多的复杂分子系统被合成和组装,这些系统能够在分子尺度上进行工作或完成复杂的任务。通常被称为分子机器,这些动态系统包含一个惊人多样的结构基元,并被设计为对大量的致动刺激做出反应。在这篇综述中,我们概述了区分简单开关和转子与机器的条件,并从各种领域中吸取了一些最令人兴奋的最近例子,展示了驱动分子力学的机会。重点强调了需要可控和分层组装这些分子组件,以便在微、介观和宏观尺度上显示可测量的效果。就像在自然界中一样,这种策略将通过许多机器在直线链、功能化表面或三维组装中的集体作用来实现所做工作的显著放大。

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