Get the extensionGet the app Support us Sign in

Science

NASA Advances LISA Mission Contributions With New Test Telescope

3 min read Rewritten in plain language

AstrophysicsGoddard Space Flight CenterGravitational WavesLISAThe Universe

Show what we removed
  • NASA has taken the next step in the process of developing a new all-glass telescope for the LISA (Laser Interferometer Space Antenna) mission, a space observatory designed to detect ripples in space-time called gravitational waves.
  • Led by ESA (European Space Agency), the LISA mission is slated for launch in the mid-2030s. As a collaborative partner, NASA is contributing the telescopes, other hardware, and engineering and scientific support as part of its mission to better understand how the universe works.
  • To learn more about the LISA mission, visit:

3 sentences from our version of the report, chosen to cover it. Nothing here is written; every line is in the article below. How

Headline check

Nothing in this headline could be checked against the report.

Nothing was measured here, so nothing is claimed. How this is checked

Read the full reportHide the full report3 min

NASA has taken the next step in the process of developing a new all-glass telescope for the LISA (Laser Interferometer Space Antenna) mission, a space observatory designed to detect ripples in space-time called gravitational waves.

L3Harris Technologies will design, assemble, and integrate the new telescope for NASA. Called the Engineering Test Unit, this contribution represents a final step toward the future production of flight hardware.

Led by ESA (European Space Agency), the LISA mission is slated for launch in the mid-2030s. As a collaborative partner, NASA is contributing the telescopes, other hardware, and engineering and scientific support as part of its mission to better understand how the universe works.

The LISA mission will deploy a trio of satellites into an Earth-following orbit, creating a large triangular array stretching 1.6 million miles (2.5 million kilometers) on each side. Each satellite will include two telescopes that will use infrared laser beams to simultaneously transmit and receive signals between adjacent spacecraft. Through these telescopes, the spacecraft will measure miniscule changes in their relative distances, the signals of passing gravitational waves.

“These changes are tiny, smaller than the width of a helium atom, but through them LISA will reveal a sea of low-frequency gravitational waves that we cannot currently detect through facilities on Earth,” said Ira Thorpe, the NASA project scientist for the mission at the agency’s Goddard Space Flight Center in Greenbelt, Maryland. “The LISA mission will be able to detect mergers of monster black holes billions of light-years away, map compact pairs of white dwarfs, neutron stars, and stellar-mass black holes in our own cosmic backyard, and perhaps provide new insights into gravity itself.”

Each telescope will be made of an amber-colored ceramic-glass composite called Zerodur, which is widely used in high-precision applications because it resists changes in shape across a wide range of temperatures. In 2024, L3Harris delivered a prototype telescope to NASA that served as an engineering development unit for this next step.

"We’ve put the prototype through rigorous testing, and we’re bringing everything we’ve learned into this new telescope,” said Ritva Keski-Kuha, lead for the LISA Telescope program at NASA Goddard. “This will be our last pre-flight unit and our first optical telescope delivery to ESA." Earlier this year, in June, the team delivered a structural model of the telescope made from metal instead of glass.

Gravitational waves were predicted by Albert Einstein’s 1916 general theory of relativity and first detected by ground-based observatories in 2015. The waves form whenever large objects accelerate, such as two stars in orbit around each other. They flow across space-time, moving at the speed of light, and are unaffected by objects they encounter along the way. These properties make them a valuable tool for probing the cosmos.

Each of the three LISA spacecraft contains a free-floating gold-platinum cube called a proof mass. The spacecraft will fly around the cube and manage its environment so the cube falls through space only under the influence of gravity. In 2016, ESA’s LISA Pathfinder mission showed that it was possible to reduce non-gravitational forces on the proof masses to the level needed for gravitational wave detection.

Additional NASA contributions include the laser system, devices to manage the buildup of electric charge on the proof masses, data analysis for identifying and characterizing individual gravitational wave sources, and additional scientific and engineering expertise.

To learn more about the LISA mission, visit:

Goddard engineers delivered the first prototype laser for the European Space Agency-led Laser Interferometer Space…

Our calmer version of NASA’s report: the same facts and quotations, with the loaded words taken out.

How calmly it was written, and our calmer version

Only this newsroom has covered it so far.

Outlet Niral ScoreAdjectivesSourcingMood
NASAas they published this story 86.9 11 13 50
Mundane Readneutralized from NASA 88.8 10 13 50

Sign in to react.

Comments are not open yet. They will be once there is someone to read every one before it appears. If something here is wrong, tell us — that we do read.