拓扑电池的放电动力学

Vishal P. Patil, Žiga Kos, M. Ravnik, J. Dunkel
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引用次数: 6

摘要

从DNA中的结到湍流等离子体,拓扑约束一直被认为是在一定长度尺度上定位和储存能量的有效机制。尽管近年来在制备拓扑态的理论和实验方面取得了进展,但拓扑在放电动力学中的作用尚未得到很好的理解。在这里,我们通过模拟238个不同拓扑结构的打结弹性纤维和3D液晶,研究了两种原型软系统中的鲁棒拓扑能量释放协议。通过断裂弹性纤维或切换液晶表面锚定,这种拓扑电池可以进行机械工作或驱动流体流动。我们的研究揭示了能量释放变得超慢或超快的拓扑共振状态。由于其固有的稳定性,我们期望这种可调谐拓扑电池在软物质的能量存储和定向释放方面有广泛的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Discharging dynamics of topological batteries
Topological constraints have long been known to provide efficient mechanisms for localizing and storing energy across a range of length scales, from knots in DNA to turbulent plasmas. Despite recent theoretical and experimental progress on the preparation of topological states, the role of topology in the discharging dynamics is not well understood. Here, we investigate robust topological energy release protocols in two archetypal soft systems through simulations of 238 knotted elastic fibers and 3D liquid crystals across a range of different topologies. By breaking the elastic fiber or switching the liquid crystal surface anchoring, such topological batteries can perform mechanical work or drive fluid flows. Our study reveals topologically resonant states for which energy release becomes superslow or superfast. Owing to their intrinsic stability we expect such tunable topological batteries to have broad applications to storage and directed release of energy in soft matter.
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