黑料网

News

Researchers demonstrated the first realization of invisible absorbers and sensors

Absorbers are completely transparent at non-operational frequencies.
invisible_sensors_www_en.jpg

An array of helical elements absorbs radiation of a certain frequency while casting no shadow in light over a range of other frequencies.

The manipulation of light has led to many applications that have revolutionized society through communications, medicine and entertainment. Devices consuming the energy of electromagnetic radiation, such as absorbers and sensors, play an essential role in the using and controlling of light.

The researchers at the Aalto University Department of Radio Science and Engineering have demonstrated the first realization of absorbers that do not reflect light over a wide range of frequencies. All previous absorbers at other frequencies were either fully reflective, as mirrors, or the range of low reflection was very narrow.

鈥淭hese absorbers are completely transparent at non-operational frequencies鈥, concludes researcher Viktar Asadchy

While maintaining efficient absorption of light of the desired frequency, all conventional absorbers strongly interact with the radiation of other frequencies, reflecting it back and not letting it pass through. As a result, they create a reflected beam as well as a perceptible shadow behind and become detectable.

The designed and tested structures are able to absorb and sense the light of one or several desired frequency spectra, while being invisible and undetectable at other frequencies.

The research has proven that such an unparalleled operation can only be achieved with the use of structural inclusions whose electric and magnetic properties are strongly coupled.

These functionalities can lead to a variety of unique applications for radio astronomy and stealth technology. They can also be very useful in everyday life. For example, they could be used in screens that can filter any cell phone signals and pass through Wi-Fi and other microwaves.

鈥淭his research will also open new venues for general light control and enable novel devices such as flat lenses and light beam transformers鈥, explains Asadchy.

  

Further information:
Researcher Viktar Asadchy
Aalto University
viktar.asadchy@aalto.fi
tel: +358 50 420 5846

The research group: Theoretical and Applied Electromagnetics of Complex Media
 

  • Updated:
  • Published:
Share
URL copied!

Read more news

Left: person wearing a black jacket and pearl necklace. Right: molecular structure illustration against a cosmic background.
Research & Art Published:

Decoding the chemistry of space with machine learning

Astronomers can detect complex chemical fingerprints聽in stardust聽鈥 but many of them remain unidentified. The聽SpaceML聽project combines machine learning and computational chemistry to simulate how molecules form and evolve in space, helping researchers decode these signals.
A close-up of numerous small, rectangular particles with rounded edges, appearing grey on a dark background.
Research & Art Published:

Catalysis in a new light: Microscale interactions could enhance clean energy technologies

A new study provides a more detailed view of how catalysts function during chemical reactions. The discovery could help develop more efficient materials for applications such as green hydrogen production and a more sustainable chemical industry.
A conference hall filled with attendees sitting at tables, watching a presentation on a large screen.
Campus, Research & Art Published:

Physics Days 2026 gathered Finnish physicists 黑料网

The 2026 edition of the annual conference featured talks on moir茅 matter, women in physics and paper cuts.
A speaker addresses a large audience in a dark auditorium. A large screen behind shows a vibrant image with the text 'Welcome'.
Awards and Recognition, Research & Art Published:

Annual review looked back on the past year

The annual review of the School of Arts, Design and Architecture provided a comprehensive overview of the past year. Members of the community were also awarded in the event.