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Scientists create a lightsaber-like laser antenna that transmits radio waves

Scientists have demonstrated a remarkable new antenna that resembles a lightsaber, using a laser to create a tunable beam of plasma capable of transmitting radio waves. The technology could revolutionize wireless communications by allowing antennas to change their size and direction on demand, with promising applications in satellites, radar, and space exploration.

ScienceDaily

Scientists have demonstrated a new type of radio antenna that looks remarkably like a lightsaber. Instead of using a conventional metal structure, the device relies on a laser to create a narrow beam of plasma capable of transmitting radio waves. The technology could eventually make it possible to build antennas that change their length and direction on demand, opening up new possibilities for wireless communications, radar, satellites, and space exploration.

"The plasma beam antenna looks like a lightsaber and is tunable, meaning we should be able to transmit across a broad range of frequencies," says Prya Darshni, corresponding author of a journal article on the work and a Ph.D. student at North Carolina State University. "And while we have not demonstrated its ability to serve as an antenna that can receive radio signals, there's no reason to believe it wouldn't also work as a receiver." "This is an exciting new concept that enables one to be able to have a customized antenna without complex mechanical deployment mechanisms," says Paul Franzon, co-author of the paper and the Cirrus Logic Distinguished Professor of Electrical and Computer Engineering at NC State.

Why Scientists Want Antennas Made From Plasma Traditional antennas depend heavily on their physical dimensions. In particular, an antenna's length helps determine which radio frequencies it can efficiently transmit or receive. Changing that length can allow an antenna to operate at different frequencies, but making such adjustments often requires moving mechanical components or complicated engineering.

That becomes especially challenging in applications such as space exploration, where equipment must be compact, lightweight, and reliable. The NC State researchers wanted to investigate whether a laser could offer a simpler solution by creating an antenna directly in the surrounding air.

Instead of physically extending or retracting a metal antenna, the idea was to adjust the laser to produce a plasma beam of the desired length. "One of the questions we wanted to explore with this work was whether it would be possible to create plasma antennas using lasers, which would allow us to generate antennas at whatever length was needed," says Darshni.

"And we have now shown that it is possible." Turning a Laser Beam Into a Radio Antenna The approach begins with a laser directed through the air. By carefully controlling the laser's power and beam diameter, the researchers can ionize a narrow region of air, stripping electrons from atoms and molecules to produce plasma.

Plasma is often described as the fourth state of matter, alongside solids, liquids, and gases. Because it contains electrically charged particles, it can interact with electromagnetic fields in ways that ordinary air cannot. In this experiment, the laser produces a thin, concentrated channel of plasma known as a plasma filament.

This filament becomes the foundation of the antenna. However, creating a plasma beam was only part of the challenge. To make it transmit radio waves, the team also needed a way to deliver an electrical signal to the plasma without relying on a conventional physical connection.

Their solution was a specially designed contactless antenna feed. The system uses a metal ring that functions as a capacitor, a component that stores electrical energy in an electric field. The laser passes through the center of the ring, producing a plasma filament that extends through the capacitor's surrounding electromagnetic field.

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