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Rich complex behaviour of self-assembled nanoparticles far from equilibrium

机译:自组装纳米粒子的丰富复杂行为远离平衡

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摘要

A profoundly fundamental question at the interface between physics and biology remains open: what are the minimum requirements for emergence of complex behaviour from nonliving systems? Here, we address this question and report complex behaviour of tens to thousands of colloidal nanoparticles in a system designed to be as plain as possible: the system is driven far from equilibrium by ultrafast laser pulses that create spatiotemporal temperature gradients, inducing Marangoni flow that drags particles towards aggregation; strong Brownian motion, used as source of fluctuations, opposes aggregation. Nonlinear feedback mechanisms naturally arise between flow, aggregate and Brownian motion, allowing fast external control with minimal intervention. Consequently, complex behaviour, analogous to those seen in living organisms, emerges, whereby aggregates can self-sustain, self-regulate, self-replicate, self-heal and can be transferred from one location to another, all within seconds. Aggregates can comprise only one pattern or bifurcated patterns can coexist, compete, endure or perish.
机译:在物理学和生物学之间的接口上,一个根本性的问题仍然悬而未决:从非生命系统中出现复杂行为的最低要求是什么?在这里,我们解决了这个问题,并报告了在尽可能简单的系统中成千上万的胶体纳米颗粒的复杂行为:超快激光脉冲驱动该系统远离平衡,从而产生时空温度梯度,从而引起马拉格尼流向运动。粒子趋于聚集;强烈的布朗运动被用作波动的源头,反对聚集。在流动,聚合和布朗运动之间自然会产生非线性反馈机制,从而可以以最少的干预实现快速的外部控制。因此,出现了类似于在活生物体中观察到的复杂行为,聚集体可以自我维持,自我调节,自我复制,自我修复,并且可以在几秒钟内从一个位置转移到另一个位置。聚集体可以仅包含一种模式,或者分叉的模式可以共存,竞争,持久或灭亡。

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