微尺度化学
整改
材料科学
能量收集
肖特基二极管
无线
矩形天线
光电子学
二极管
天线(收音机)
功率(物理)
电气工程
纳米技术
计算机科学
电信
物理
工程类
数学教育
数学
量子力学
作者
Manuel Suárez‐Rodríguez,Beatriz Martín‐García,Witold Skowroński,Kamil Staszek,Francesco Calavalle,A. Fert,Marco Gobbi,Fèlix Casanova,Luis E. Hueso
标识
DOI:10.1002/adma.202400729
摘要
Wireless radiofrequency rectifiers have the potential to power the billions of "Internet of Things" (IoT) devices currently in use by effectively harnessing ambient electromagnetic radiation. However, the current technology relies on the implementation of rectifiers based on Schottky diodes, which exhibit limited capabilities for high-frequency and low-power applications. Consequently, they require an antenna to capture the incoming signal and amplify the input power, thereby limiting the possibility of miniaturizing devices to the millimeter scale. Here, the authors report wireless rectification at the GHz range in a microscale device built on single chiral tellurium with extremely low input powers. By studying the crystal symmetry and the temperature dependence of the rectification, the authors demonstrate that its origin is the intrinsic nonlinear conductivity of the material. Additionally, the unprecedented ability to modulate the rectification output by an electrostatic gate is shown. These results open the path to developing tuneable microscale wireless rectifiers with a single material.
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