稳健性(进化)
厄米矩阵
灵敏度(控制系统)
电子线路
电容感应
谐振器
电子工程
拓扑(电路)
计算机科学
物理
电气工程
工程类
光电子学
化学
生物化学
量子力学
基因
作者
Hao Yuan,Weixuan Zhang,Zilong Zhou,Wenlong Wang,Naiqiao Pan,Yue Feng,Houjun Sun,Xiangdong Zhang
出处
期刊:Advanced Science
[Wiley]
日期:2023-04-25
卷期号:10 (19): e2301128-e2301128
被引量:66
标识
DOI:10.1002/advs.202301128
摘要
Abstract Electronic sensors play important roles in various applications, such as industry and environmental monitoring, biomedical sample ingredient analysis, wireless networks and so on. However, the sensitivity and robustness of current schemes are often limited by the low quality‐factors of resonators and fabrication disorders. Hence, exploring new mechanisms of the electronic sensor with a high‐level sensitivity and a strong robustness is of great significance. Here, a new way to design electronic sensors with superior performances based on exotic properties of non‐Hermitian topological physics is proposed. Owing to the extreme boundary‐sensitivity of non‐Hermitian topological zero modes, the frequency shift induced by boundary perturbations can show an exponential growth trend with respect to the size of non‐Hermitian topolectrical circuit sensors. Moreover, such an exponential growth sensitivity is also robust against disorders of circuit elements. Using designed non‐Hermitian topolectrical circuit sensors, the ultrasensitive identification of the distance, rotation angle, and liquid level is further experimentally verified with the designed capacitive devices. The proposed non‐Hermitian topolectrical circuit sensors can possess a wide range of applications in ultrasensitive environmental monitoring and show an exciting prospect for next‐generation sensing technologies.
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