Correlation between peak energy and Fourier power density spectrum slope in gamma-ray bursts
S. Dichiara (1,2), C. Guidorzi (1), L. Amati (3), F. Frontera (1,3),, R. Margutti (4,5) ((1) Ferrara University, (2) ICRANet, (3) INAF, IASF-Bologna, (4) Harvard, (5) NYU)

TL;DR
This study reveals a significant anti-correlation between the rest-frame peak energy and the Fourier power density spectrum slope in gamma-ray bursts, providing insights into their emission mechanisms and challenging some existing models.
Contribution
It objectively characterizes GRB temporal variability through PDS analysis and uncovers a novel Ep,i-alpha anti-correlation with implications for emission models.
Findings
Significant Ep,i-alpha anti-correlation with p-value ~ 10^-9
PDS slope linked to GRB spectral and physical properties
Results challenge internal shock models, support magnetic reconnection scenarios
Abstract
The origin of the gamma-ray burst (GRB) prompt emission still defies explanation, in spite of recent progress made, for example, on the occasional presence of a thermal component in the spectrum along with the ubiquitous non-thermal component that is modelled with a Band function. The combination of finite duration and aperiodic modulations make GRBs hard to characterise temporally. Although correlations between GRB luminosity and spectral hardness on one side and time variability on the other side have long been known, the loose and often arbitrary definition of the latter makes the interpretation uncertain. We characterise the temporal variability in an objective way and search for a connection with rest-frame spectral properties for a number of well-observed GRBs. We studied the individual power density spectra (PDS) of 123 long gamma-ray bursts with measured redshift, rest-frame…
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