Two-dimensional MoS<sub>2</sub>-enabled flexible rectenna for Wi-Fi-band wireless energy harvesting.

Zhang, Xu; Grajal, Jesús; Vazquez-Roy, Jose Luis; Radhakrishna, Ujwal; Wang, Xiaoxue; Chern, Winston; Zhou, Lin; Lin, Yuxuan et al. · Nature · 2019

basic_science · Level V

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Abstract

The mechanical and electronic properties of two-dimensional materials make them promising for use in flexible electronics<sup>1-3</sup>. Their atomic thickness and large-scale synthesis capability could enable the development of 'smart skin'<sup>1,3-5</sup>, which could transform ordinary objects into an intelligent distributed sensor network<sup>6</sup>. 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 materials<sup>1,2,4,7</sup>), 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 gigahertz<sup>8</sup> 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 properties<sup>9-12</sup>. Here we demonstrate an atomically thin and flexible rectenna based on a MoS<sub>2</sub> 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 rectifiers<sup>9-12</sup>. This flexible MoS<sub>2</sub>-based rectifier operates up to the X-band<sup>8</sup> (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 MoS<sub>2</sub> 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 MoS<sub>2</sub> 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.