Relativistic Effects and GRB Polarization in Power-Law Evolution
Liang Li, She-Sheng Xue, and Zi-Gao Dai

TL;DR
This paper analyzes the four-phase timing evolution of GRB polarization and proposes that relativistic and geometric effects of a magnetized jet with magnetic patches can explain the observed polarization behavior.
Contribution
It introduces a unified model based on relativistic and geometric effects to explain the complex polarization evolution in GRBs, challenging previous models with segmented emission regions.
Findings
GRB polarization exhibits four distinct timing phases.
A power-law decay of polarization with index -0.50 ± 0.02.
Late-time rebrightening and flattening in polarization evolution.
Abstract
Despite decades of polarization observations and high-significance polarized -ray, X-ray, optical, and radio emissions in gamma-ray bursts (GRBs) have been accumulating in dozens of cases, people have yet to find a consistent scenario for understanding the globally observed timing properties of GRB polarization to date. Here, we report that the observed properties of GRB polarization exhibit a four-segment timing evolution at the cosmological distance: (I) an initial hump early on (within the first few seconds); (II) a later on power-law decay (from 10 to 10 s), which takes the form of ; (III) afterwards a late-time rebrightening hump (from 10 to 10 s); and (IV) finally a flatting power-law decay (from 10 to 10 s), with the the form of $\pi_{\rm obs} \propto…
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Taxonomy
TopicsGamma-ray bursts and supernovae · Astro and Planetary Science · Astronomical Observations and Instrumentation
