U Toledo Developing Solar Sheets to Generate Power in Space

The University of Toledo just received a five-year, $12.5 million grant from the U.S. Air Force to develop flexible solar cell sheets for space. The photovoltaic energy sheets will be used to collect solar energy for powering Earth-based receivers or other orbital or aerial instrumentation, such as communications satellites.

Physicists at the institution will develop flexible solar cell sheets, each about the size of a piece of paper, which can be assembled and connected into considerably larger structures. A single space-based array could use tens of millions of the sheets and extend to sizes as large as a square mile. (U Toledo won't be engineering the arrays, however.) An array of that size is projected to be able to generate about 800 megawatts of electrical power, enough to power about 130,000 houses on earth for the day.

Professor Randall Ellingson receives grant from U.S. Air Force
Randall Ellingson, a professor of physics, received a $12.5 million grant from the U.S. Air Force to develop space-based solar energy sheets for transmitting clean power back to Earth or satellites in orbit.
Source: University of Toledo

The researchers are building tandem solar cells—two cells stacked on top of each other that are more efficient for harvesting the sun's spectrum—on ultra-thin, flexible supporting materials. The team will "sandwich" various groupings of solar cells, including perovskites, silicon, cadmium telluride and copper indium gallium selenide, to see what the optimal combination is. The team will also investigate the use of lightweight, flexible supporting material—thin ceramic, plastics and glass—to create the large solar cell sheets. According to the physicists, those materials need to be "resilient, ultra-thin and tolerant to high and low temperatures."

"With 37% stronger sunlight above the atmosphere than on a typical sunny day here on Earth's surface, orbital solar arrays offer a critical opportunity to harness renewable energy, achieve sustainability goals and provide strategic power for a wide range of orbital and airborne technologies," said Randall Ellingson, a professor in the university's Department of Physics and Astronomy, member of the school's Wright Center for Photovoltaics Innovation and Commercialization and leader of the project, in a statement.

This isn't the first time Ellingson has worked with the Air Force on space projects. In 2019, his team received $7.4 million to develop solar technology to power space vehicles using sunlight.

About the Author

Dian Schaffhauser is a former senior contributing editor for 1105 Media's education publications THE Journal, Campus Technology and Spaces4Learning.

Featured

  • Nureva Pro audio solution

    Nureva HDL Pro Audio Systems Earn HETMA Approved Status

    The Higher Education Technology Managers Alliance (HETMA) has added two solutions from audio conferencing provider Nureva to its HETMA Approved Products list.

  • Norfolk State University Partners with Voltus for Energy Efficiency Program

    Norfolk State University recently announced that it has selected Voltus, Inc., to implement the university’s new energy efficiency program on its campus in Norfolk, Va. According to a news release, the partnership’s goal is to reduce campus energy use by 27% by the year 2030 and support grid reliability across the state of Virginia.

  • bar graph with the bars made out of abstract cinder blocks and other construction materials

    Spaces4Learning 2025 Trends in K–12: Materials & Construction

    With 2025 well underway, it’s time to take a look at some broader trends submitted by you, our Spaces4Learning readership. We asked for your thoughts on topics like classroom design, health & safety, materials & construction, and technology in both K–12 and higher-education environments. Below is a roundup of 2025 trends in K–12 materials and construction from the experts in the trenches.

  • Washington University School of Medicine Completes $165M Expansion Project

    The Washington University School of Medicine in St. Louis, Mo., recently completed a vertical expansion of its Steven & Susan Lipstein BJC Institute of Health (BJCIH), according to a news release. The university partnered with Lawrence Group for the design of the six-floor addition, which cost about $165 million.