Searches for Shapiro delay in seven binary pulsars using the MeerKAT telescope
Mohsen Shamohammadi, Matthew Bailes, Paulo C. C. Freire, Aditya, Parthasarathy, Daniel J. Reardon, Ryan M. Shannon, Vivek Venkatraman, Krishnan, Miquel C. i. Bernadich, Andrew D. Cameron, David J. Champion,, Alessandro Corongiu, Christopher Flynn, Marisa Geyer, Michael Kramer

TL;DR
This study reports the detection of Shapiro delay in seven binary millisecond pulsars using MeerKAT, enabling mass measurements and system constraints, and discusses implications for pulsar mass determination accuracy.
Contribution
First comprehensive analysis of Shapiro delay in seven pulsars with MeerKAT, providing new mass measurements and insights into pulsar system properties.
Findings
Confirmed Shapiro delay in all seven pulsars.
Measured masses for three pulsars, confirming high mass for PSR J1614-2230.
Provided a formula to estimate pulsar mass measurement accuracy.
Abstract
Precision timing of millisecond pulsars in binary systems enables observers to detect the relativistic Shapiro delay induced by space time curvature. When favourably aligned, this enables constraints to be placed on the component masses and system orientation. Here we present the results of timing campaigns on seven binary millisecond pulsars observed with the 64-antenna MeerKAT radio telescope that show evidence of Shapiro delay: PSRs~J01016422, J11016424, J11256014, J15144946, J16142230, J17325049, and J19093744. Evidence for Shapiro delay was found in all of the systems, and for three the orientations and data quality enabled strong constraints on their orbital inclinations and component masses. For PSRs~J11256014, J16142230 and J19093744, we determined pulsar masses to be , …
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Radio Astronomy Observations and Technology · Advanced Frequency and Time Standards
