Two-dimensional MoS2-enabled flexible rectenna for Wi-Fi-band wireless energy harvesting

矩形天线 数码产品 能量收集 整流器(神经网络) 计算机科学 电气工程 天线(收音机) 晶体管 柔性电子器件 无线传感器网络 无线 无线电频率 材料科学 能量(信号处理) 电信 工程类 物理 电压 计算机网络 随机神经网络 量子力学 机器学习 人工神经网络 循环神经网络
作者
Xu Zhang,Jesús Grajal,José‐Luis Vázquez‐Roy,Ujwal Radhakrishna,Xiaoxue Wang,Winston Chern,Lin Zhou,Yuxuan Lin,Pin‐Chun Shen,Xiang Ji,Xi Ling,Ahmad Zubair,Yuhao Zhang,Han Wang,Madan Dubey,Jing Kong,M. S. Dresselhaus,Tomás Palacios
出处
期刊:Nature [Springer Nature]
卷期号:566 (7744): 368-372 被引量:308
标识
DOI:10.1038/s41586-019-0892-1
摘要

The mechanical and electronic properties of two-dimensional materials make them promising for use in flexible electronics1–3. Their atomic thickness and large-scale synthesis capability could enable the development of ‘smart skin’1,3–5, which could transform ordinary objects into an intelligent distributed sensor network6. However, although many important components of such a distributed electronic system have already been demonstrated (for example, transistors, sensors and memory devices based on two-dimensional materials1,2,4,7), an efficient, flexible and always-on energy-harvesting solution, which is indispensable for self-powered systems, is still missing. Electromagnetic radiation from Wi-Fi systems operating at 2.4 and 5.9 gigahertz8 is becoming increasingly ubiquitous and would be ideal to harvest for powering future distributed electronics. However, the high frequencies used for Wi-Fi communications have remained elusive to radiofrequency harvesters (that is, rectennas) made of flexible semiconductors owing to their limited transport properties9–12. Here we demonstrate an atomically thin and flexible rectenna based on a MoS2 semiconducting–metallic-phase heterojunction with a cutoff frequency of 10 gigahertz, which represents an improvement in speed of roughly one order of magnitude compared with current state-of-the-art flexible rectifiers9–12. This flexible MoS2-based rectifier operates up to the X-band8 (8 to 12 gigahertz) and covers most of the unlicensed industrial, scientific and medical radio band, including the Wi-Fi channels. By integrating the ultrafast MoS2 rectifier with a flexible Wi-Fi-band antenna, we fabricate a fully flexible and integrated rectenna that achieves wireless energy harvesting of electromagnetic radiation in the Wi-Fi band with zero external bias (battery-free). Moreover, our MoS2 rectifier acts as a flexible mixer, realizing frequency conversion beyond 10 gigahertz. This work provides a universal energy-harvesting building block that can be integrated with various flexible electronic systems. Integration of an ultrafast flexible rectifier made from a two-dimensional material with a flexible antenna achieves wireless energy harvesting of Wi-Fi radiation, which could power future flexible electronic systems.
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