Gravitational Light Deflection with SKA-VLBI and Its Application to Precision Tests of General Relativity
Y. J. Li, J. J. Li, Z. H. Lin, D. J. Liu, Y. W. Dong, C. J. Hao, Y. Xu
astro-ph.IM, astro-ph.HE, gr-qc
Submitted: 2026-06-24
Comments: Published in Advancing Astrophysics with the SKA II (AASKAII), 2026 (arXiv:2606.20366). Report-no:AASKAII/Li01
License: http://creativecommons.org/licenses/by-nc-sa/4.0/
The gist: Experimental test of general relativity remains an ongoing endeavour.
Terminology
Abstract
Experimental test of general relativity remains an ongoing endeavour. Radio astrometry provides a vital tool for precisely measuring the light deflection caused by the Sun, testing general relativity, and discriminating between gravitational theories. The best accuracy for the post-Newtonian relativistic parameter, gamma, achieved with very long baseline interferometry is 9 times 10-5. With 300-sec integration, SKA-VLBI can achieve a sensitivity of about 15 mu Jy at 15 GHz over a bandwidth of 0.256 GHz. This enables detection of about 36 extragalactic radio sources per square degree with flux densities of about 1.5 mJy, and potentially detecting in-beam radio sources. Single-epoch SKA-VLBI observations may achieve an astrometric precision of about 2 mu as. Utilising the Sun as a gravitational lens, 10-epoch positional tracking of extragalactic sources could improve gamma accuracy to about 10-7. Even with Jupiter as a lens, SKA-VLBI can measure gamma to about 10-4. Critically, it may conduct the first measurement of quadrupolar deflection of light caused by Jupiter, determining the physical oblateness of Jupiter, J 2, J, to within about 10-3. These advances are expected to rigorously test and improve gravitational theories or high-order parameterized post-Newtonian formalisms, while laying the foundations for (sub) mu as astrometry.
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