English

Experimental and Theoretical Realization of Zenneck Wave-based Non-Radiative, Non-Coupled Wireless Power Transmission

Applied Physics 2019-03-26 v1

Abstract

A decade ago, non-radiative wireless power transmission re-emerged as a promising alternative to deliver electrical power to devices where a physical wiring proved to be unfeasible. However, existing approaches are neither scalable nor efficient when multiple devices are involved, as they are restricted by factors like coupling and external environments. Zenneck waves are excited at interfaces, like surface plasmons and have the potential to deliver electrical power to devices placed on a conducting surface. Here, we demonstrate, efficient and long range delivery of electrical power by exciting nonradiative waves over metal surfaces to multiple loads. Our modeling and simulation using Maxwells equation with proper boundary conditions shows Zenneck type behavior for the excited waves and are in excellent agreement with experimental results. In conclusion, we physically realize a radically different power transfer system, based on a wave, whose existence has been fiercely debated for over a century.

Keywords

Cite

@article{arxiv.1903.10294,
  title  = {Experimental and Theoretical Realization of Zenneck Wave-based Non-Radiative, Non-Coupled Wireless Power Transmission},
  author = {Sai Kiran Oruganti and Jagannath Malik and Jongwon Lee and Dipra Paul and Woojin Park and Bonyoung Lee and Seoktae Seo and Hak Sun Kim and Franklin Bien and Thomas Thundat},
  journal= {arXiv preprint arXiv:1903.10294},
  year   = {2019}
}

Comments

16 pages, 4 figures. Article submitted to Nature Communications