论文标题

拓扑无线电力传输的演示

Demonstration of topological wireless power transfer

论文作者

Zhang, Li, Yang, Yihao, Jiang, Zhao, Chen, Qiaolu, Yan, Qinghui, Wu, Zhouyi, Zhang, Baile, Huangfu, Jiangtao, Chen, Hongsheng

论文摘要

非辐射无线功率传输(WPT)技术的最新进展基本上依赖于磁共振和近场耦合,已成功实现了广泛的应用。但是,由于效率不断变化,转移距离长,基于双谐振器的WPT系统严重限于短或中距离距离。基于多雷谐振器的WPT系统可以克服这个问题,但是,该问题对扰动和制造缺陷的敏感性遭受了敏感性。在这里,我们在实验上证明了拓扑无线功率传递(TWPT)的概念,其中能量通过位于一维放射线拓扑拓扑端的两个拓扑边缘状态之间的近场耦合有效地传递。这样的TWPT系统可以建模为具有复杂边界电势的平等时间对称Su-Schrieffer-Heeger(SSH)链。此外,线圈构型是明智设计的,它可以显着抑制可能破坏SSH链的手性对称性的非粘合线圈之间不需要的跨耦合。通过调整间和内部内耦合强度,我们在理论上和实验上都在拓扑边缘状态的特殊点附近表现出高能量传递效率,即使在存在障碍的情况下也是如此。拓扑超材料,非热物理学和WPT技术的结合可以承诺在电子,运输和行业的长距离内进行各种强大,有效的WPT应用。

Recent advances in non-radiative wireless power transfer (WPT) technique essentially relying on magnetic resonance and near-field coupling have successfully enabled a wide range of applications. However, WPT systems based on double resonators are severely limited to short- or mid-range distance, due to the deteriorating efficiency and power with long transfer distance. WPT systems based on multi-relay resonators can overcome this problem, which, however, suffer from sensitivity to perturbations and fabrication imperfections. Here, we experimentally demonstrate a concept of topological wireless power transfer (TWPT), where energy is transferred efficiently via the near-field coupling between two topological edge states localized at the ends of a one-dimensional radiowave topological insulator. Such a TWPT system can be modelled as a parity-time-symmetric Su-Schrieffer-Heeger (SSH) chain with complex boundary potentials. Besides, the coil configurations are judiciously designed, which significantly suppress the unwanted cross-couplings between nonadjacent coils that could break the chiral symmetry of the SSH chain. By tuning the inter- and intra-cell coupling strengths, we theoretically and experimentally demonstrate high energy transfer efficiency near the exceptional point of the topological edge states, even in the presence of disorder. The combination of topological metamaterials, non-Hermitian physics, and WPT techniques could promise a variety of robust, efficient WPT applications over long distances in electronics, transportation, and industry.

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