XRISM/Resolve observations of Hercules X-1: a pulsating, highly broadened Fe K emission line from the neutron star accretion column

Fuente: arXiv
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Main Authors: Kosec, Peter, Brenneman, Laura, Kara, Erin, Pinto, Ciro, Rogantini, Daniele, Staubert, Rudiger, Walton, Dominic, Barra, Francesco, Fabian, Andrew, Enoto, Teruaki, Miller, Jon M., Narita, Takuto, Sakamoto, Koh, Nagai, Yutaro
Format: Preprint
Published: 2026
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author Kosec, Peter
Brenneman, Laura
Kara, Erin
Pinto, Ciro
Rogantini, Daniele
Staubert, Rudiger
Walton, Dominic
Barra, Francesco
Fabian, Andrew
Enoto, Teruaki
Miller, Jon M.
Narita, Takuto
Sakamoto, Koh
Nagai, Yutaro
author_facet Kosec, Peter
Brenneman, Laura
Kara, Erin
Pinto, Ciro
Rogantini, Daniele
Staubert, Rudiger
Walton, Dominic
Barra, Francesco
Fabian, Andrew
Enoto, Teruaki
Miller, Jon M.
Narita, Takuto
Sakamoto, Koh
Nagai, Yutaro
contents The study of X-ray pulsar accretion columns helps us characterize accretion physics in this extreme regime of strong gravity and strong magnetic fields. Previous observations of the X-ray pulsar Hercules X-1 revealed a highly broadened Fe K emission line, associated with Doppler motions exceeding 0.1c, suggesting its origin in the accretion column. We obtained a high-spectral resolution view of the Fe K energy band of Hercules X-1 thanks to a 200 ks observation with the XRISM observatory. The XRISM/Resolve microcalorimeter spectra allow us to separate the different spectral components and accurately model them with phenomenological models. We confirm the presence of a broad line near 6.5 keV with a typical $1σ$ width of 1 keV. Performing a pulse-phase-resolved analysis, we find that the feature is strongly variable with Her X-1 pulse phase. This is consistent with the proposed origin due to collisional recombination or by reprocessing of the primary X-ray emission in the accretion column, where strong variability with pulse phase is expected due to the rotation of the columns alongside with the neutron star. Additionally, the Fe K line pulsation pattern evolves with the 35-day cycle of Hercules X-1, supporting the scenario that the neutron star and its accretion columns undergo precession, in agreement with recent polarimetric results from the IXPE observatory. We discuss the future applications of modeling of this broad line in X-ray pulsars with physical spectral models. This could be used to detect and track neutron star precession, advancing our understanding of neutron star interiors.
format Preprint
id arxiv_https___arxiv_org_abs_2605_01146
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle XRISM/Resolve observations of Hercules X-1: a pulsating, highly broadened Fe K emission line from the neutron star accretion column
Kosec, Peter
Brenneman, Laura
Kara, Erin
Pinto, Ciro
Rogantini, Daniele
Staubert, Rudiger
Walton, Dominic
Barra, Francesco
Fabian, Andrew
Enoto, Teruaki
Miller, Jon M.
Narita, Takuto
Sakamoto, Koh
Nagai, Yutaro
High Energy Astrophysical Phenomena
The study of X-ray pulsar accretion columns helps us characterize accretion physics in this extreme regime of strong gravity and strong magnetic fields. Previous observations of the X-ray pulsar Hercules X-1 revealed a highly broadened Fe K emission line, associated with Doppler motions exceeding 0.1c, suggesting its origin in the accretion column. We obtained a high-spectral resolution view of the Fe K energy band of Hercules X-1 thanks to a 200 ks observation with the XRISM observatory. The XRISM/Resolve microcalorimeter spectra allow us to separate the different spectral components and accurately model them with phenomenological models. We confirm the presence of a broad line near 6.5 keV with a typical $1σ$ width of 1 keV. Performing a pulse-phase-resolved analysis, we find that the feature is strongly variable with Her X-1 pulse phase. This is consistent with the proposed origin due to collisional recombination or by reprocessing of the primary X-ray emission in the accretion column, where strong variability with pulse phase is expected due to the rotation of the columns alongside with the neutron star. Additionally, the Fe K line pulsation pattern evolves with the 35-day cycle of Hercules X-1, supporting the scenario that the neutron star and its accretion columns undergo precession, in agreement with recent polarimetric results from the IXPE observatory. We discuss the future applications of modeling of this broad line in X-ray pulsars with physical spectral models. This could be used to detect and track neutron star precession, advancing our understanding of neutron star interiors.
title XRISM/Resolve observations of Hercules X-1: a pulsating, highly broadened Fe K emission line from the neutron star accretion column
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2605.01146