A1 Refereed original research article in a scientific journal

NICER detection of a new candidate cyclotron line in the bursting X-ray pulsar GRO J1744–28;




AuthorsLiu, Qi; Kong, Lingda; Ji, Long; Ducci, Lorenzo; Dai, Xiaohang; Santangelo, Andrea; Cai, Ce; Cui, Shuwang; Ge, Mingyu; Zhang, Shu; Zhang, Shuang-Nan; Tao Lian; Feng Hua; Wang Wei; Suleimanov Valery; Tsygankov Sergey; Poutanen Juri; Mushtukov Alexander

PublisherEDP Sciences

Publication year2026

Journal: Astronomy and Astrophysics

Article numberA101

Volume711

ISSN0004-6361

eISSN1432-0746

DOIhttps://doi.org/10.1051/0004-6361/202659195

Publication's open availability at the time of reportingOpen Access

Publication channel's open availability Open Access publication channel

Web address https://doi.org/10.1051/0004-6361/202659195

Self-archived copy’s web addresshttps://research.utu.fi/converis/portal/detail/Publication/527013710

Self-archived copy's licenceCC BY

Self-archived copy's versionPublisher`s PDF


Abstract

We report the detection of cyclotron resonant scattering features (CRSFs) in the spectrum of the unique bursting pulsar GRO J1744–28, observed during its recent outburst in 2021 with the Neutron Star Interior Composition Explorer (NICER). Clear pulsations at a frequency of 2.141128 Hz as well as Type II X-ray bursts were observed. The pulse profile exhibits a single-peaked shape in all energy bands, with the pulse fraction showing a positive correlation with energy. We find that the persistent X-ray continuum of the accreting pulsar is well described by typical phenomenological models, and we confirm the presence of the cyclotron line at ∼5 keV as reported in previous studies. In addition, we detect a candidate absorption feature with a centroid energy of 2 keV. If confirmed, this feature could be interpreted as a CRSF, which would correspond to a magnetic field of ∼1.8 × 1011 G. Pulse-phase-resolved analysis also reveals this absorption line around the peak pulse phases. These NICER observations provide tentative evidence for the cyclotron line candidate, establishing GRO J1744–28 as a key laboratory for studying accretion physics in an intermediate-strength magnetic field.


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Funding information in the publication
This work is supported by the Science Foundation of Hebei Normal University (No. L2026B49), Top-notch Talent Project (Overseas Platform) under the Hebei Yanzhao Golden Terrace Talent Gathering Program, the NSFC (12133007, 12173103 and 12261141691), the National Key Research and Development Program of China (Grant No. 2021YFA0718503), the Fundamental Research Funds for the Central Universities (010-63263126), and Science Research Project of Hebei Education Department (BJ2026091). LD acknowledges funding from German Research Foundation (DFG), Projektnummer 549824807. ST and JP acknowledge support by the Research Council of Finland, the Centre of Excellence in Neutron-Star Physics (project 374064). This work has made use of archival data provided by the High Energy Astrophysics Science Archive Research Center (HEASARC).


Last updated on 11/08/2026 12:56:56 PM