Close Menu
Daily Guardian EuropeDaily Guardian Europe
  • Home
  • Europe
  • World
  • Politics
  • Business
  • Lifestyle
  • Sports
  • Travel
  • Environment
  • Culture
  • Press Release
  • Trending
What's On

Syria’s main Kurdish force SDF ceases to exist after army merger

August 26, 2026

Canada’s Carney to attend EU’s State of the Union – POLITICO

August 26, 2026

Authorities in Greece issue code red wildfire alert for Ionian islands

August 26, 2026

Video. Rare Mondrian unseen for 25 years heads to auction

August 26, 2026

Spain set for a ‘Super September’ as travellers chase shoulder season sun

August 26, 2026
Facebook X (Twitter) Instagram
Web Stories
Facebook X (Twitter) Instagram
Daily Guardian Europe
Newsletter
  • Home
  • Europe
  • World
  • Politics
  • Business
  • Lifestyle
  • Sports
  • Travel
  • Environment
  • Culture
  • Press Release
  • Trending
Daily Guardian EuropeDaily Guardian Europe
Home»Lifestyle
Lifestyle

Spanish invisible shield that saves satellites from irreparable failure

By staffAugust 3, 20263 Mins Read
Spanish invisible shield that saves satellites from irreparable failure
Share
Facebook Twitter LinkedIn Pinterest Email

Published on
30/07/2026 – 6:15 GMT+2

The multipactor effect has been on the European Space Agency’s (ESA) list of concerns for more than 40 years. It is an avalanche of electrons that occurs in vacuum, inside components such as antennas or waveguides, and can ultimately cause irreversible damage to equipment.

For decades, the standard solution has been to coat these parts with Alodine, a chromium-based compound that offers good protection but is harmful to the health of those who handle it and to the environment. European authorities have long been pushing for its ban, although none of the alternatives proposed so far has managed to match its technical performance.

Lidia Martínez, a CSIC researcher at the Institute of Materials Science of Madrid (source in Spanish) (ICMM), explains that the sector needed a substitute that would emit few secondary electrons, as these are what trigger the chain reaction.

Most previous attempts had focused on modifying the surface of materials at the micrometre scale, without achieving the leap in performance demanded by the space industry.

In this case, size really does matter, and not just the material

The ICMM team decided to change scale. Instead of working with micrometric structures, it has developed a rough surface at the nanometric level, that is, with features on the order of a billionth of a metre. To do so, they produced gold and silver nanoparticles between four and eight nanometres in size using an ultra-high-vacuum technique known as a gas aggregation source, which allows the materials to be deposited without solvents or residues.

The result is porous, metallic, chemically clean films which, according to tests carried out in ESA-accredited laboratories, reduce secondary electron emission by around 30% compared with Alodine.

In addition, the so-called cut-off energy threshold, the point at which the material starts to generate more electrons than it receives, improves by up to 300% in some configurations.

The researchers also subjected the coatings to six-month ageing tests and thermal treatments at 150°C, similar to those a satellite experiences when exposed to the Sun, and found that although performance drops slightly over time, it remains higher than that of freshly applied Alodine.

From patent to space, a journey that is not yet complete

The technology is already covered by a joint European patent application by CSIC and Nanostine (source in Spanish), filed with the European Patent Office in July 2025 and currently under examination.

Nanostine, a spin-off created by CSIC itself, will be responsible for commercialising the coating, aimed mainly at the aerospace sector. The development has also been funded by an Industrial PhD programme of the Community of Madrid and supported by the ESA Business Innovation Centre, coordinated in Madrid by the Madri+d Foundation.

Despite the promising results, Martínez is cautious about the timetable: taking a new coating all the way to actual use in space usually requires around a decade of testing and validation.

The researcher says ESA has expressed satisfaction with the solution put forward, but stresses that the project still has to clear several stages before these materials can fly on board a satellite.

Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

Keep Reading

Mission accomplished for Sophie Adenot: ISS antenna installed

Brazil fines TikTok owner over misuse of children’s and teenagers’ data

Sophie Adenot makes her second spacewalk

Mysterious, ultra-powerful AI system emerges as China closes in on the West

Norway moves to tighten rules on use of smart glasses

Macron confirms school mobile phone ban effective from new term

African nations ramp up their space programmes in a bid to reduce reliance on the West

From iPods to wired headphones: Why more Gen Zers are picking retro tech

Another eclipse over Spain on 28 August: where and how to see the Moon almost completely covered

Editors Picks

Canada’s Carney to attend EU’s State of the Union – POLITICO

August 26, 2026

Authorities in Greece issue code red wildfire alert for Ionian islands

August 26, 2026

Video. Rare Mondrian unseen for 25 years heads to auction

August 26, 2026

Spain set for a ‘Super September’ as travellers chase shoulder season sun

August 26, 2026

Subscribe to News

Get the latest Europe and world news and updates directly to your inbox.

Latest News

Musk receives Ukraine’s Order of Freedom from Zelenskyy – POLITICO

August 26, 2026

Second arrest over deadly sword attack at Swedish school

August 26, 2026

ICE arrests hit nearly 50,000 in July, highest of Trump’s mass deportation agenda

August 26, 2026
Facebook X (Twitter) Pinterest TikTok Instagram
© 2026 Daily Guardian Europe. All Rights Reserved.
  • Privacy Policy
  • Terms
  • Advertise
  • Contact

Type above and press Enter to search. Press Esc to cancel.