Detection of a strong ~2.5 Hz modulation in the newly discovered millisecond pulsar MAXI J1816–195

Author:

Li P P12,Tao L1,Zhang L1ORCID,Bu Q C3ORCID,Qu J L1,Ji L4ORCID,Wang P J12,Chen Y P1,Zhang S1,Ma R C12ORCID,Yang Z X12,Ye W T12,Zhao S J12,Zhao Q C12ORCID,Huang Y1,Ma X1,Qiao E L56,Jia S M1,Zhang S N1

Affiliation:

1. Key Laboratory of Particle Astrophysics, Institute of High Energy Physics, Chinese Academy of Sciences , 100049 Beijing , China

2. Uinversity of Chinese Academy of Sciences, Chinese Academy of Sciences , 100049 Beijing , China

3. Institut für Astronomie und Astrophysik, Kepler Center for Astro and Particle Physics, Eberhard Karls Universität , Sand 1, D-72076 Tübingen , Germany

4. School of Physics and Astronomy, Sun Yat-sen University , 519082 Zhuhai, People’s Republic of China

5. National Astronomical Observatories, Chinese Academy of Sciences , 100101 Beijing , China

6. School of Astrology and Space Sciences, University of Chinese Academy of Sciences , 100049 Beijing , China

Abstract

ABSTRACT MAXI J1816–195 is a newly discovered accreting millisecond X-ray pulsar that went outburst in 2022 June. Through timing analysis with Neutron star Interior Composition Explorer (NICER) and Nuclear Spectroscopic Telescope Array (NuSTAR) observations, we find a transient modulation at ~2.5 Hz during the decay period of MAXI J1816–195. The modulation is strongly correlated with a spectral hardening, and its fractional rms amplitude increases with energy. These results suggest that the modulation is likely to be produced in an unstable corona. In addition, the presence of the modulation during thermonuclear bursts indicates that it may originate from a disc-corona where the optical depth is likely the main factor affecting the modulation, rather than temperature. Moreover, we find significant reflection features in the spectra observed simultaneously by NICER and NuSTAR, including a relativistically broadened Fe-K line around 6–7 keV, and a Compton hump in the 10–30 keV energy band. The radius of the inner disc is constrained to be Rin  = (1.04–1.23) RISCO based on reflection modeling of the broad-band spectra. Assuming that the inner disc is truncated at the magnetosphere radius, we estimate that the magnetic field strength is $\le 4.67 \times 10^{8}\, \rm G$.

Funder

NASA

CNSA

CAS

IHEP

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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