English

Distributed Laser Charging: A Wireless Power Transfer Approach

Signal Processing 2018-10-10 v3

Abstract

Wireless power transfer (WPT) is a promising solution to provide convenient and perpetual energy supplies to electronics. Traditional WPT technologies face the challenge of providing Watt-level power over meter-level distance for Internet of Things (IoT) and mobile devices, such as sensors, controllers, smart-phones, laptops, etc.. Distributed laser charging (DLC), a new WPT alternative, has the potential to solve these problems and enable WPT with the similar experience as WiFi communications. In this paper, we present a multi-module DLC system model, in order to illustrate its physical fundamentals and mathematical formula. This analytical modeling enables the evaluation of power conversion or transmission for each individual module, considering the impacts of laser wavelength, transmission attenuation and photovoltaic-cell (PV-cell) temperature. Based on the linear approximation of electricity-to-laser and laser-to-electricity power conversion validated by measurement and simulation, we derive the maximum power transmission efficiency in closed-form. Thus, we demonstrate the variation of the maximum power transmission efficiency depending on the supply power at the transmitter, laser wavelength, transmission distance, and PV-cell temperature. Similar to the maximization of information transmission capacity in wireless information transfer (WIT), the maximization of the power transmission efficiency is equally important in WPT. Therefore, this work not only provides the insight of DLC in theory, but also offers the guideline of DLC system design in practice.

Keywords

Cite

@article{arxiv.1801.03835,
  title  = {Distributed Laser Charging: A Wireless Power Transfer Approach},
  author = {Qingqing Zhang and Wen Fang and Qingwen Liu and Jun Wu and Pengfei Xia and Liuqing Yang},
  journal= {arXiv preprint arXiv:1801.03835},
  year   = {2018}
}

Comments

add table IV

R2 v1 2026-06-22T23:42:50.636Z