Gravitational wave detectors can sense ripples in spacetime from colliding neutron stars, but they cannot pinpoint exactly where in the sky the collision happened. This matters because without a precise location, astronomers cannot train their telescopes on the aftermath to study what happens when neutron stars merge—events that forge heavy elements like gold and platinum. The current detectors localise a merger to an area thousands of times larger than the full Moon, making follow-up observations a needle-in-a-haystack search. The Gravitational-wave Optical Transient Observer (GOTO) tackles this by using arrays of robotic telescopes that can rapidly scan large swaths of sky. This proposal seeks funding to expand the existing La Palma facility from 4 to 16 telescopes and build a second copy in Australia. Together, they would cover most of the observable sky every few days, allowing astronomers to identify new optical sources that appear after a gravitational wave trigger. If successful, GOTO will turn gravitational wave detections into fully observed cosmic events, revealing how neutron star mergers produce heavy elements. This is fundamental science—it will not directly change daily life, but it will answer basic questions about where the elements in our bodies and planet come from.
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The direct detection of gravitational waves using the Ligo gravitational wave detectors in September 2015 was one of humankind's greatest achievements. It was the equivalent of measuring the distance to the nearest star to our Sun better than the thickness of a human hair. Gravitational waves offer a route straight to the heart of the most extreme systems in nature and environments that are inaccessible to conventional astronomical techniques. This makes them powerful probes of extreme conditions and beacons to the distant universe. However, gravitational wave detectors are currently not able to accurately pin-point the location in the sky of these waves. It will be rather like the bird watcher hearing an interesting call in the distance; the direction can be determined roughly but then the searcher must scan visually for signs of movement to pinpoint the cause. Although merging black holes are not expected to show an immediate optical signal, merging neutron stars are. The problem is that the detectors can only locate the merging system to an area thousands of times the area of the moon. If the region can be mapped quickly enough new sources can be identified which were not present before the event took place. This idea was spectacularly demonstrated when in Sept 2017 a merging neutron star binary was detected first in gravitational waves and then a few days later in optical, radio and X-rays. This event became one of the most well studied astronomical events ever made and indicated that gold may well originate in these violent events. In 2015, the Universities of Warwick and Monash in Australia developed the Gravitational-wave Optical Transient Observer (GOTO). The concept was to have a series of telescopes on two mounts allowing us to cover 100 times the area of the moon in one go. As soon as a gravitational wave was triggered the robotic telescope would start taking images of the part of the sky where the event was expected to be. Since then a number of UK and international groups have joined the GOTO consortium and a prototype has been operating on the mountain top of La Palma in the Canaries. This proposal aims to obtain funding so that the GOTO facility on La Palma can be extended to 16 telescopes covering 4 times as much as the prototype and to build a copy of GOTO in Australia. This would allow us to cover most of the observable sky and ensure that we obtain an image of the same patch of sky every few days which is essential if we are going to weed out new sources which are not the gravitational wave event but other events such as supernovae, accreting binaries or flare stars. Although somewhat confusing the search for neutron stars mergers, those other types of sources are at the same time another very useful science product that the project can produce. Our design ensures we are able to compete with other world class facilities. Our prototype telescopes are already providing excellent data showing our believe in this project will pay off.
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