Astronomers Detect Possible Evidence of Vacuum Birefringence in Magnetar 1E 1547
A team of astronomers, including Dr. Marcus Lower from Swinburne University of Technology, has potentially identified the first evidence of vacuum birefringence—an unusual phenomenon predicted by quantum mechanics—in the magnetic field of the rare neutron star known as a magnetar, designated 1E 1547.0-5408 (or 1E1547). This groundbreaking discovery, if confirmed, may provide new insights into the nature of the quantum universe. The findings were published recently in the journal Nature.
Understanding Vacuum Birefringence
Vacuum birefringence, first predicted nearly 90 years ago by quantum mechanics pioneer Werner Heisenberg, suggests that what we consider a perfect vacuum is not actually devoid of matter. Instead, it is filled with ‘virtual particles’ that intermittently appear and disappear. According to theory, exceptionally strong magnetic fields can affect these virtual particles, ultimately altering how light travels, which is the essence of vacuum birefringence.
Studying Magnetar 1E 1547
The research team utilized NASA’s Imaging X-ray Polarimetry Explorer (IXPE), alongside the NICER X-ray telescope aboard the International Space Station and Murriyang, CSIRO’s Parkes radio telescope, to study magnetar 1E 1547. Dr. Lower’s radio observations, followed by analysis on the Ngarrgu Tindebeek supercomputer, were crucial in investigating this theoretical quantum effect. Dr. Lower emphasized that detecting vacuum birefringence requires magnetic fields over 100 million times stronger than those generated on Earth, making magnetars ideal for exploration.
Rare Viewing Geometry Supports Research
The team’s observations indicated that the magnetic and rotational axes of 1E 1547 are nearly aligned, a configuration allowing favorable conditions to examine vacuum birefringence. They found significant clues linking the quantum effect to their measurements: the X-rays from the magnetar exhibited high levels of polarization, consistent with the polarization of radio observations, suggesting a direct connection to the magnetic field.
Dr. Lower noted, “Because of the magnetic field’s strength, Heisenberg’s virtual particles become aligned with the direction the field is pointing.” The alignment of the magnetar’s axes facilitated the detection efforts, which could finally confirm the elusive phenomenon predicted by Heisenberg.
Future Implications and Further Observations
If the interpretation of the data holds, it may allow physicists to examine how established quantum theories behave in some of the most extreme conditions in the universe. Dr. Lower pointed out that additional observations and advanced simulations are necessary to confirm whether the signals originate from vacuum birefringence and to differentiate them from other processes occurring around magnetars.
Dr. Lower concluded, “With these future data on hand and our updated simulations, we may finally be able to complete the quest started by Heisenberg nearly 90 years ago.”
The paper titled “Vacuum birefringence and the polarized X-ray emission of a radio magnetar” has been published in Nature.


