Science & Space

Ultrathin silicon structures can tune mid-IR light in billionths of a second

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Light in the mid-infrared (mid-IR) portion of the electromagnetic spectrum plays a key role in modern sensing. Because molecules interact with this kind of light in specific ways, researchers use technologies like mid-IR spectroscopy to identify biological materials, drugs and pollutants. Mid-IR light can also serve as a carrier of information in free-space optical communications, where data are transmitted through the air without using cables or fibers. Better control of mid-IR light could therefore lead to more sensitive detectors and faster communications.

Metasurfaces are one solution scientists are exploring to achieve this kind of control. These ultrathin structures are built using nanoscale patterns that can shape and direct light waves. Unfortunately, most metasurfaces developed thus far are static: Once fabricated, their optical properties are fixed, limiting their use in real-world photonic systems.

Now, researchers led by Hatice Altug in the Bionanophotonic Systems Laboratory (BIOS) in EPFL’s School of Engineering have overcome this bottleneck with metasurfaces based on suspended membranes of crystalline silicon. By inducing mobile electrical charges within the silicon itself, the researchers can change how the metasurfaces respond to light in real time without changing their physical structure. The devices also achieve record optical performance, with more than an order of magnitude better performance in key metrics compared with previous mid-IR platforms based on similar materials.

“By using crystalline silicon with the nanostructured layer suspended in air, we were able to greatly reduce optical losses that typically limit conventional mid-infrared platforms,” Altug explains. The work has been published in Nature Communications.

From milliseconds to billionths of a second

As BIOS senior scientist Ivan Sinev explains, the team demonstrated two ways of tuning the metasurfaces without altering their nanostructure.

“In one approach, we use integrated electrodes as microheaters to induce changes in the silicon’s optical properties thousands of times per second using an electric current,” he says. “In another, we used ultrafast laser pulses to induce these changes, allowing the metasurfaces to respond on billionth-of-a-second (nanosecond) timescales.”

This rapid, real-time manipulation of light signals could help communication systems transmit information more efficiently and enable sensors that adapt quickly to changing conditions.

“Importantly, our platform’s record optical performance does not come at the expense of scalability, because we use manufacturing techniques that are already compatible with large-scale semiconductor production,” says first author Felix Brikh.

Ultra-thin silicon structures that can rapidly tune their interaction with light
Achieving ultra-high quality factors in mid-IR metasurfaces. Credit: Nature Communications (2026). DOI: 10.1038/s41467-026-75121-6

A platform for future mid-infrared photonics

Rather than creating a single device, the work establishes a versatile platform for future mid-IR technologies. In particular, the platform could enable compact, low-power devices for free-space optical communications and highly selective, adaptive chemical and biological sensing. It could also help develop active radiative cooling technologies to help surfaces release heat, for example, in refrigeration or satellite thermal management applications.

Looking further ahead, the combination of high optical performance and fast tunability could support advanced photonics applications that rely on precise control of light, such as quantum spectroscopy.

Publication details

Felix Ulrich Brikh et al, Mid-IR light modulators enabled by dynamically tunable ultra-high-Q silicon membrane metasurfaces, Nature Communications (2026). DOI: 10.1038/s41467-026-75121-6

Key concepts

NanostructuresInfrared techniques

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Lisa Lock

Lisa Lock

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Robert Egan

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Ultrathin silicon structures can tune mid-IR light in billionths of a second (2026, September 10)
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