论文标题

音调束系统中可积极控制的拓扑相变

Actively controllable topological phase transition in phononic beam systems

论文作者

Zhou, Weijian, Chen, Weiqiu, Destrade, Michel, Lim, C. W.

论文摘要

允许边缘或界面波的拓扑绝缘子,但禁止散装波浪,彻底改变了我们对声学/弹性系统的科学认知。由于其非平凡的拓扑特征,边缘(界面)波受到拓扑保护,以防止缺陷和疾病。这种卓越而独特的特征可能会在量子和声学/弹性信息处理的应用中带来大量新的机会。但是,当前的声学/弹性拓扑绝缘子仍处于婴儿期,理论和预测仅在实验室起作用,并且在促进其实际应用之前仍然存在许多问题。明显的缺点之一是它们的工作频率范围狭窄,这是本文的主要问题。我们设计了一个一维的音调束系统,该系统由均匀的环氧中心光束制成,该中心束由两个均匀的压电束夹住,并用非常薄的电极覆盖,并定期放置。这些电极连接到具有负电容器的外部电路。我们表明,可以通过更改负电容器的值来诱导和调整拓扑相变。因此,可以广泛改变拓扑保护的界面模式的工作频率,因此拓扑绝缘子的工作频率范围可以大大“扩展”。这种智能拓扑设备还可以在需要高精度的可控信息处理的智能技术中找到广泛的应用。

Topological insulators, which allow edge or interface waves but forbid bulk waves, have revolutionized our scientific cognition of acoustic/elastic systems. Due to their nontrivial topological characteristics, edge (interface)waves are topologically protected against defects and disorders. This superior and unique characteristic could lead to a wealth of new opportunities in applications of quantum and acoustic/elastic information processing. However, current acoustic/elastic topological insulators are still at an infancy stage where the theory and prediction only work in laboratories and there are still many problems left open before promoting their practical applications. One of the apparent disadvantages is their narrow working frequency range, which is the main concern in this paper. We design a one-dimensional phononic beam system made of a homogeneous epoxy central beam sandwiched by two homogeneous piezoelectric beams, and covered with extremely thin electrodes, periodically and separately placed. These electrodes are connected to external electric circuits with negative capacitors. We show that a topological phase transition can be induced and tuned by changing the values of the negative capacitors. It follows that the working frequency of the topologically protected interface mode can be widely changed, such that the working frequency range of the topological insulator can be considerably `broadened'. This intelligent topological device may also find wide applications in intelligent technologies that need controllable information processing of high precision.

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