September 23, 2026
Scientists build world's most accurate atomic clock
by National University of Singapore

Pictured in the Centre for Quantum Technologies' lutetium atomic clock lab are (from left) Associate Professor Murray Barrett, Ph.D. student Michael Lee and Senior Research Scientist Kyle Arnold. Credit: Centre for Quantum Technologies
Take a second and turn it into trillions of moments. Measure each one. That's how precisely an atomic clock at Singapore's Centre for Quantum Technologies (CQT) keeps time—and with record-setting accuracy, according to results published in Nature on Sept. 23.
"I am confident that what we have now is the most accurate clock in the world," says team leader Murray Barrett, a CQT principal investigator and associate professor in the Department of Physics at the National University of Singapore.
The researchers base their claim on measurements showing that their atomic clock, built from the element lutetium, outperforms previous record holders built from different elements.
More accurate clocks hold promise for probing unknowns in fundamental physics and monitoring gravitational changes across Earth—and they are vying to redefine the second.
Pushing the limits of timekeeping
Atomic clocks keep time by referring to an atomic transition, when one of an atom's electrons changes energy levels. The frequency of this transition is a fixed property of the atom. A laser is matched to this "clock transition," and the light oscillations act like a pendulum to count time.
The basic method has been in place for decades. Cesium atoms have set the global standard for time since the 1960s, and cesium atomic clocks already support the Global Positioning System (GPS) and synchronize communication and transport networks.
But scientists have been pushing the limits of timekeeping with other elements.
Elements such as recent record holders ytterbium, strontium and aluminum oscillate much faster than cesium, helping them keep time more accurately. The international body responsible for time standards is considering data from such new optical atomic clocks toward a redefinition of the second expected in or after 2030.
The CQT team started working with lutetium over a decade ago on the hunch that it had the right properties to join the set of top-performing clocks. To its knowledge, it is the only group working with this element for timekeeping so far.
Now, the team has measured the frequency of its lutetium clock to 19 decimal places, reporting an uncertainty of 1 x 10-19, the lowest reported for any optical atomic clock to date. The researchers also built two clocks and compared their ticking. The clocks agreed to an uncertainty of 5.7 x 10-19, making it the most precise clock comparison ever made. More measurements could reduce that uncertainty further.
Lutetium's advantage
Lutetium's strong performance comes from properties of the atom: Its clock transition is hardly affected by changes in temperature or magnetic field. In other elements, these environmental factors can slightly vary the frequency of the clock transition.
"In the future, I just don't see how this clock can be beat," says Barrett. His team has spent over a decade doing precision engineering on its atomic clock setup and testing different properties of the atom. That work included inventing a scheme called "hyperfine averaging" to define the clock transition.
"The good properties mean that high accuracy can be achieved even in a wide range of environments," says Barrett. "The lutetium clock would be stable even if you went from the hottest place recorded on Earth in Death Valley to the coldest place in the Antarctic plateau."
Two is better than one
The team's confidence is bolstered by its clock comparison, carried out using a technique known as correlation spectroscopy over 200 hours of measurement.
Each lutetium clock consists of a single charged 176Lu+ ion with a clock transition matched to a laser with a wavelength of 848 nanometers.
"There is a humorous saying that 'A man with a watch knows what time it is. A man with two watches is never sure,'" says Dr. Kyle Arnold, a senior research scientist from CQT at NUS and joint first author on the paper. "It basically tells you that the only way to test the accuracy of a standard is to compare clocks and demonstrate reproducibility."
Ideally, the team would also compare its lutetium clock to the world's other best atomic clocks, but there's a challenge. Optical atomic clocks at the 10-19 level are so precise they can detect the slowing of time caused by gravity over height differences of millimeters.
The CQT team's comparison measurement could resolve a 5 mm height difference between its clocks on the same table. To ensure that this did not limit the measurement, the researchers independently measured the height difference of the Lu+ ions to within a millimeter. Differences in gravity between places on Earth are not yet known well enough to compare clocks at this level.
To enable new comparisons and explore future applications, the clock needs to come out of the lab. "The next step is to take the lab-scale clock and miniaturize it into a transportable system," says Michael Lee, joint first author on the paper and a Ph.D. student on the NUS team. The researchers expect they can make their clock smaller without compromising its accuracy.
Publication details
Kyle Joseph Arnold, Lu+ optical frequency references with accuracy verified at the 19th digit, Nature (2026). DOI: 10.1038/s41586-026-11072-8. www.nature.com/articles/s41586-026-11072-8
Journal information: Nature
Key concepts
Atomic & molecular processes in external fields Atomic & molecular structure Spectroscopy
Provided by National University of Singapore



