How the EHT Built a Telescope the Size of Earth Across 6 Continents to Photograph a Black Hole
Aishwarya Kapoor | Times Life Bureau | Aug 06, 2026, 07:57 IST
How the EHT Built a Telescope the Size of Earth Across 6 Continents to Photograph a Black Hole
Image credit : Times Life Bureau
The Event Horizon Telescope didn't build one giant dish. It linked radio observatories across six continents into a single imaging instrument with a resolution no single telescope could achieve. The EHT used a technique called interferometry to synchronise signals from Chile to the South Pole, and in 2019, it showed the world its first photograph of a black hole.
The Sharpest Eye Ever Built
The technique is called interferometry, and the principle is both elegant and demanding. Two radio telescopes separated by a large distance, observing the same source at the same frequency, will each receive the same incoming wavefront, but at slightly different times, because the wavefront reaches one dish before the other. By recording both signals with atomic-clock precision and then combining them mathematically, astronomers can extract interference patterns that carry information equivalent to what a single dish the size of the separation between them would have collected. The longer the baseline, the finer the resolution. The EHT's baseline is the diameter of the Earth: roughly 12,700 kilometres. That is the aperture. The collecting area is still the sum of the individual dishes, but the resolving power belongs to the planet.
This is Very Long Baseline Interferometry, or VLBI, and radio astronomers have used it for decades on shorter baselines. What the EHT did was push it to its physical limit, the largest baseline available on a solid surface, and apply it to the hardest target in observational astronomy.
Six Continents , One Instrument
Each station observed at a wavelength of 1.3 millimetres, the millimetre-wave radio band where the galactic centre and the core of M87 are relatively transparent. All stations had to observe simultaneously, which meant coordinating across time zones, weather windows, and equipment schedules on three continents in a single week. The window opened in April 2017. Five of the eight sites had usable weather. That was enough.
The Data Problem No Cloud Could Solve
April 2019: The Image That Arrived
In 2022, the EHT released a second image: Sagittarius A*, the black hole at the centre of our own Milky Way, 26,000 light-years away and about 4 million solar masses. Imaging it was technically harder than M87 because material orbits it much faster, the plasma completes an orbit in minutes rather than weeks, so the source was flickering on timescales shorter than a single observation. The team had to develop new imaging methods to handle a source that was changing while they watched it.
What the Array Becomes Next
The imaging produced by the EHT is not a photograph in the conventional sense. No single pixel in the image corresponds to a single photon arriving at a single detector. The image is a mathematical reconstruction, a best-fit solution to an underdetermined problem, the data constrain what the source could look like, and the algorithm finds the simplest image consistent with all the measurements. The EHT team used three independent imaging pipelines and compared their outputs. All three converged on the same ring. That convergence, across independent methods and independent teams, is what makes the result trustworthy.
The geometry of general relativity predicted the shadow's size and shape decades before any telescope could test it. The EHT's measurement of M87*'s shadow diameter matched the prediction to within 10 percent. A camera the size of Earth, assembled from dishes that had never been designed to work together, confirmed the most extreme prediction of the most tested theory in physics, using hard drives flown on cargo planes and atomic clocks ticking in the Atacama desert at five kilometres above the sea.