无线电源传输
拓扑(电路)
稳健性(进化)
电阻抗
联轴节(管道)
物理
发射机
最大功率转移定理
共振感应耦合
无线
共振(粒子物理)
功率(物理)
能量转移
传递函数
电子工程
计算机科学
限制
控制理论(社会学)
自由度(物理和化学)
电效率
正常模式
无线电频率
相(物质)
模耦合
高效能源利用
理论(学习稳定性)
传输(计算)
感应耦合
传输效率
模式(计算机接口)
备用电源
电气工程
输入阻抗
能量(信号处理)
频率响应
作者
Xian Wu,Hui Li,Luyao Wan,Yunhui Li,Yaping Yang,H Chen,Zhiwei Guo
摘要
Conventional magnetic-resonance-based wireless power transfer (WPT) relies on strong coupling between the transmitter and receiver, which imposes stringent constraints on transfer distance, operating frequency, and load matching, thereby limiting the simultaneous achievement of high efficiency and robustness. Here, we show that WPT enabled by non-Hermitian physics represents a fundamentally different resonance mechanism rather than a refinement of conventional schemes. By introducing a laterally coupled auxiliary resonator, the system is converted into a third-order non-Hermitian configuration, in which power transfer is governed by the eigenmode structure of an effective non-Hermitian Hamiltonian. A zero-reflection resonant mode emerges, associated with a topological phase vortex, ensuring a stable real-eigenfrequency operating point. As a result, efficient energy transfer is no longer restricted to the strong-coupling regime. High efficiency and robustness against variations in transfer distance and load impedance are simultaneously achieved even under weak coupling, while the operating frequency becomes tunable and can be shifted away from high-loss resonances to reduce standby power consumption. Theoretical and experimental results consistently confirm the non-Hermitian origin, topological stability, and practical advantages of the proposed scheme, establishing non-Hermitian physics as a new resonance paradigm for wireless power transfer.
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