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Breakdown of the scallop theorem for an asymmetrical folding molecular motor in soft matter

机译:柔软物质中不对称折叠分子电机的扇贝定理击穿

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We use molecular dynamic simulations to investigate the motion of a folding molecular motor inside soft matter. Purcell's scallop theorem forbids the displacement of the motor due to time symmetrical hydrodynamic laws at low Reynolds numbers whatever the asymmetry of the folding and unfolding rates. However, the fluctuation theorems imply a violation of the time symmetry of the motor's trajectories due to the entropy generated by the motor, suggesting a breakdown of the scallop theorem at the nanoscale. To clarify this picture, we study the predicted violation of time reversibility of the motor's trajectories, using two reverse asymmetric folding mechanisms. We actually observe this violation of time reversibility of the motor's trajectories. We also observe the previously reported fluidization of the medium induced by the motor's folding, but find that this induced diffusion is not enough to explain the increase of the motor's displacement. As a result, the motor is not carried by the medium in our system but moves by its own, in violation of the scallop theorem. The observed violation of the scallop theorem opens a route to create very simple molecular motors moving in soft matter environments.
机译:我们使用分子动态模拟来研究柔软物质内的折叠分子电机的运动。 PURCELL的扇贝定理由于时间对称的流体动力学定律,在低雷诺数的时间,无论折叠和展开速率的不对称如何,都是由于时间对称的流体动力学定律。然而,波动定理意味着由于电动机产生的熵导致电机轨迹的时间对称性违反了电机轨迹的时间对称性,这表明纳米级扇形定理的崩溃。为了澄清这张照片,我们使用两个反向不对称的折叠机制研究了预测违反了电机轨迹的时间可逆性。我们实际上遵守这种违反电机轨迹的时间可逆性。我们还观察到先前报道的电机折叠引起的培养基的流化,但发现这种诱导的扩散不足以解释电机位移的增加。结果,电机不是由我们系统中的介质携带,而是通过自己的自身移动,违反扇贝定理。观察到的违反扇贝定理的违规是开启了一种在软质环境中产生非常简单的分子电机的途径。

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