Solar metapanel controls wireless communications with excess energy

Emphasis Innovation

Metasurface solar panel

Although still a relatively unknown technology to the public, it is difficult to overstate the impact of metamaterials and, more recently, metasurfaces, revolutionary artificial materials composed of nanostructures that can focus, deflect, twist, and even bend waves, especially electromagnetic waves such as radio and light waves.

Progress is rapid, and soon programmable metasurfaces have emerged , now also known as “programmable smart surfaces” or hypersurfaces, far more versatile than the originals, which only manipulated the waves for which they were initially designed.

Currently, programmable metasurfaces are rapidly advancing in the field of wireless communications, and can be divided into two main categories: (1) passive relay surfaces, which optimize signal quality through spatially programmed beam generation, and (2) simple architecture wireless communication systems, which directly modulate information in reflected waves.

Examples include panels that direct communication signals through complex environments , adjustable flat lensesqubit manipulators for quantum computers, and new bioelectronic medical devices, but the list of demonstrations grows every day.

But programmability came at a cost: While traditional metasurfaces are passive structures, meaning they don’t need a power supply, programmable metasurfaces only work with external electricity sources, which eliminated much of the advantages of simplicity, low cost, size, and scalability.

Han Tian and colleagues at Southeast University in China believe they have the solution: Integrate solar cells into programmable metasurfaces to bring back simplicity, low cost, and ease of installation.

Solar metasurface controls wireless communications with surplus energy.

Prototype built by the team. [Image: Han Wei Tian et al. – 10.29026/oea.2026.250229] Energy and utilities

Spatiotemporal encoding

The new concept has been dubbed a space-time coding metasurface powered by ambient energy.

For this purpose, solar cells are heterogeneously integrated into each meta-atom – the basic units that form a metasurface or metamaterial – to capture ambient light energy and dynamically control reflected electromagnetic waves, both sharing the same physical aperture.

This required a new spatiotemporal encoding method, allowing the autonomous programmable metasurface to form multiple independent communication beams at multiple harmonic frequencies simultaneously. By modulating the phase of each beam, the technique allows multiplexing different frequency and space features, creating multiple independent channels for information transmission.

Solar metasurface controls wireless communications with surplus energy.

The prototype operates with four channels and generates 20 times more energy than it consumes. [Image: Han Wei Tian et al. – 10.29026/oea.2026.250229] Internet and telecommunications

There’s plenty of energy left over.

As a proof of concept, the team built a four-channel wireless communication system, self-powered by ambient light, which achieved high efficiency in different directions of propagation of the communication beams. The experimental system was able to simultaneously transmit, independently and in real time, four different image information streams to four user terminals, with a power consumption of only 17.4 mW/bit.

The energy efficiency is so high that a lot of energy was left over. The panel managed to capture up to 12 mW/cm² of solar energy from the environment, exceeding its own energy consumption by almost 20 times (only 0.66 mW/cm² ) . A simple estimate shows that, under a standard solar irradiance of 100 mW/cm² , the solar-powered metasurface can capture in 1.3 hours all the electricity needed to guarantee its continuous operation for 24 hours.

Source: www.inovacaotecnologica.com.br
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