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A light-driven three-dimensional plasmonic nanosystem that translates molecular motion into reversible chiroptical function

机译:光驱动的三维等离子体纳米系统将分子运动转化为可逆的按摩功能

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摘要

Nature has developed striking light-powered proteins such as bacteriorhodopsin, which can convert light energy into conformational changes for biological functions. Such natural machines are a great source of inspiration for creation of their synthetic analogues. However, synthetic molecular machines typically operate at the nanometre scale or below. Translating controlled operation of individual molecular machines to a larger dimension, for example, to 10–100 nm, which features many practical applications, is highly important but remains challenging. Here we demonstrate a light-driven plasmonic nanosystem that can amplify the molecular motion of azobenzene through the host nanostructure and consequently translate it into reversible chiroptical function with large amplitude modulation. Light is exploited as both energy source and information probe. Our plasmonic nanosystem bears unique features of optical addressability, reversibility and modulability, which are crucial for developing all-optical molecular devices with desired functionalities.
机译:大自然已经开发出引人注目的光能蛋白质,例如细菌视紫红质,它们可以将光能转化为构象变化,以发挥生物学功能。这样的自然机器是创造其合成类似物的巨大灵感来源。然而,合成分子机器通常在纳米级或以下操作。将单个分子机器的受控操作转换为较大的尺寸(例如到10–100nm)具有很多实际应用,这非常重要,但仍然具有挑战性。在这里,我们展示了一个光驱动的等离激元纳米系统,该系统可以放大通过主体纳米结构的偶氮苯的分子运动,从而将其转化为具有大幅度调制的可逆的手性官能团。光被用作能源和信息探针。我们的等离激元纳米系统具有独特的光学寻址能力,可逆性和可调制性,这对于开发具有所需功能的全光学分子器件至关重要。

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