News Release

Indoor lighting creates power for rechargeable devices, sensors

Self-harvesting energy from indoor environments prove effective for charging batteries

Reports and Proceedings

American Institute of Physics

Indoor photovoltaics for battery-powered sensors

image: Indoor photovoltaics for battery-powered sensors view more 

Credit: Shore and Hamadani

MELVILLE, N.Y., August 4, 2021 -- As more of our devices require recharging of their batteries, researchers are looking to ambient lighting as a potential source of generating small amounts of power for indoor devices.

During the AIP Publishing Horizons -- Energy Storage and Conversion virtual conference, which will be held Aug. 4-6, Andrew Shore and Behrang Hamadani, from the National Institute of Standards and Technology, will present their findings on the capabilities of indoor solar cells in generating power under an LED. Their presentation, "Indoor photovoltaics for battery-powered sensors," will be available during the three-day conference.

The researchers used one lighting source, a white LED with a color coordinate temperature of 3,000 K and an illuminance of 1,000 lux, akin to normal brightness for indoor lights, to test three different modules -- a gallium indium phosphide (GaInP) semiconductor, a gallium arsenide (GaAs) semiconductor, and a silicon (Si) semiconductor. The light source peaked in intensity on the shorter wavelengths of light.

"Under these light settings, the GaInP mini module performed with the highest power conversion efficiency, followed by the GaAs mini module, with the Si mini module as the lowest performer," Shore said. "The GaInP and GaAs modules have a better spectral match with this visible-spectrum LED light source."

Since there is usually plenty of indoor ambient light from different sources, a ceiling light in an office environment would be enough to charge any of the mini modules that were tested, making them all viable as power sources for indoor batteries and sensors. Shore said the GaInP would require the least amount of light and still maintain high efficiency, but not all indoor light sources are LEDs.

"Different light sources have different spectra," he said. "For instance, an incandescent light source has a large portion of its irradiance in the near infrared region. Fluorescent lights have several spikes in intensity at different places in the visible spectrum. LED lights generally have one short, prominent peak around 450 nanometers and another more gradual peak around 600 nm. Each of these light sources will affect the power conversion efficiency of the photovoltaic technology."

Shore said the next step will be testing the mini modules under real-world conditions, like a person turning a light on and off at regular intervals. They hope to operate more than one sensor being powered by a module during that testing.

###

----------------------- MORE MEETING INFORMATION -----------------------

IMPORTANT LINKS

Main meeting website: https://horizons.aip.org/energystorage-conversion/ 
Technical program: https://horizons.aip.org/energystorage-conversion/program/ 
Press Room: https://horizons.aip.org/energystorage-conversion/press-room/

PRESS REGISTRATION FOR MEETING SESSIONS

We will grant free registration for credentialed and professional freelance journalists who wish to attend the meeting sessions. If you are a reporter and would like to attend, contact the AIP Media Line at media@aip.org. We can also help with setting up interviews and obtaining images, sound clips, or background information.

ABOUT APPLIED PHYSICS REVIEWS

Applied Physics Reviews features articles on significant and current topics in experimental or theoretical research in applied physics, or in applications of physics to other branches of science and engineering. The journal publishes both original research on pioneering studies of broad interest to the applied physics community, and reviews on established or emerging areas of applied physics.

ABOUT AIP PUBLISHING

AIP Publishing is a wholly owned not-for-profit subsidiary of the American Institute of Physics (AIP). AIP Publishing's mission is to support the charitable, scientific, and educational purposes of AIP through scholarly publishing activities in the fields of the physical and related sciences on its own behalf and on behalf of our publishing partners to help them proactively advance their missions.

 


Disclaimer: AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert system.