Dispersive gains enhance wireless power transfer with asymmetric resonance

IF 19 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Reports on Progress in Physics Pub Date : 2025-01-13 DOI:10.1088/1361-6633/ada637
Xianglin Hao, Ke Yin, Shiqing Cai, Jianlong Zou, Ruibin Wang, Xikui Ma, Chi Kong Tse and Tianyu Dong
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Abstract

Parity-time (PT) symmetry is a fundamental concept in non-Hermitian physics that has recently gained attention for its potential in engineering advanced electronic systems and achieving robust wireless power transfer (WPT) even in the presence of disturbances, through the incorporation of nonlinearity. However, the current PT-symmetric scheme falls short of achieving the theoretical maximum efficiency of WPT and faces challenges when applied to non-resistive loads. In this study, we propose a theoretical framework and provide experimental evidence demonstrating that asymmetric resonance, based on dispersive gain, can greatly enhance the efficiency of WPT beyond the limits of symmetric approaches. By leveraging the gain spectrum interleaving resulting from dispersion, we observe a mode switching phenomenon in asymmetric systems similar to the symmetry-breaking effect. This phenomenon reshapes the distribution of resonance energy and enables more efficient WPT compared to conventional methods. Our findings open up new possibilities for harnessing dispersion effects in various domains such as electronics, microwaves, and optics. This work represents a significant step towards exploiting dispersion as a means to optimize WPT and lays the foundation for future advancements in these fields.
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色散增益通过非对称共振增强无线电力传输
奇偶时间(PT)对称性是非厄米物理中的一个基本概念,最近因其在工程先进电子系统和实现鲁棒无线电力传输(WPT)方面的潜力而受到关注,即使在存在干扰的情况下,通过结合非线性。然而,目前的pt对称方案未能达到WPT的理论最大效率,并且在应用于非电阻性负载时面临挑战。在本研究中,我们提出了一个理论框架,并提供了实验证据,证明基于色散增益的非对称共振可以大大提高WPT的效率,超越对称方法的限制。通过利用色散引起的增益频谱交错,我们观察到非对称系统中的模式切换现象类似于对称破缺效应。这种现象改变了共振能量的分布,与传统方法相比,可以实现更高效的WPT。我们的发现为在电子、微波和光学等各个领域利用色散效应开辟了新的可能性。这项工作代表了将分散作为优化WPT手段的重要一步,并为这些领域的未来发展奠定了基础。
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来源期刊
Reports on Progress in Physics
Reports on Progress in Physics 物理-物理:综合
CiteScore
31.90
自引率
0.00%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Reports on Progress in Physics is a highly selective journal with a mission to publish ground-breaking new research and authoritative invited reviews of the highest quality and significance across all areas of physics and related areas. Articles must be essential reading for specialists, and likely to be of broader multidisciplinary interest with the expectation for long-term scientific impact and influence on the current state and/or future direction of a field.
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