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Bioinspired temporal supramolecular polymerization

机译:生物启发的时间超分子聚合

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Thriving natural systems precisely regulate their complex chemical organizations in space and time by recruitment of a complex network of fuel-driven, kinetically controlled, out-of-equilibrium transformations. Indeed this provides an active, adaptive and autonomous smart actions & functions. In contrast, synthetic systems exhibit simpler behavior owing to thermodynamically driven supramolecular polymerization with no temporal modulation of spatial organization. Stimulated by an outstanding control that nature demonstrates, a drive towards artificial out-of-equilibrium systems with the ambition to program activation and duration of structural transformations has emerged. To realize this vision, overwhelming efforts across the globe have been initiated to design temporally programmed synthetic supramolecular polymers. In an attempt to contribute to this trending field, our supramolecular chemistry group has thoroughly investigated a structure–property relationship that determines the mechanism of supramolecular polymerization. Exploiting these mechanistic insights, along with a bio-inspired fuel-driven enzyme mediated approach, we further attempted to program supramolecular polymers in both structural and temporal regimes. We believe, nature is the inspiration to the current era challenges and it also provides with the solution, a fuel-driven approach to address these. In this account, we shall discuss the efforts made by our group to build generic concept to create temporally programmable supramolecular polymers.
机译:蓬勃发展的自然系统通过招募燃料驱动的,动力学控制的,失衡转化的复杂网络来精确地调节其时空复杂的化学组织。实际上,这提供了主动,自适应和自主的智能动作和功能。相反,由于热力学驱动的超分子聚合而没有空间组织的时间调节,合成系统表现出更简单的行为。在自然界展示出的出色控制的刺激下,出现了一种以程序激活和结构转换持续时间为目标的朝着人工失衡系统发展的驱动力。为了实现这一构想,全球范围内已经开始进行巨大的努力来设计临时编程的合成超分子聚合物。为了为这一趋势领域做出贡献,我们的超分子化学小组彻底研究了决定超分子聚合机理的结构-性质关系。利用这些机制的见解,以及受生物启发的燃料驱动的酶介导的方法,我们进一步尝试在结构和时间范围内对超分子聚合物进行编程。我们相信,自然是当今时代挑战的灵感来源,它还提供了解决方案,一种以燃料为动力的方法来应对这些挑战。因此,我们将讨论小组为建立通用概念以创建可暂时编程的超分子聚合物所做的努力。

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