Plasma lensing near the eclipses of the Black Widow pulsar B1957+20
Abstract
Recently, several eclipsing millisecond pulsars have been shown to experience strong and apparent weak lensing from the outflow of their ionized companions. Lensing can be a powerful probe of the ionized plasma, with the strongest lenses potentially resolving emission regions of pulsars. Understanding lensing in the 'laboratory-like' conditions of an eclipsing pulsar may be analogously applied to fast radio bursts, many of which reside in dense, magnetized environments. We examined variable dispersion measure (DM), absorption, scattering, and flux density in the original Black Widow pulsar PSR B1957+20 through an eclipse at the Arecibo Observatory at 327 MHz. We discovered clear evidence of the two regimes of lensing, strong, and apparent weak. We show that the flux density variations in the apparently weak lensing regime can be modelled directly from variations of DM, using geometric optics. The mean effective velocities in the ingress, (954 ± 99) km s⁻¹, and egress (604 ± 47) km s⁻¹ cannot be explained by orbital motions alone, but are consistent with significant outflow velocity of material from the companion. We also show that geometric optics can predict when and where the lensing regime-change between weak and strong occurs, and argue that the apparent weak lensing is due to averaging many images. Our framework can be applied in any source with variable electron columns, measuring their relative velocities and distances. In other eclipsing pulsars, this provides a unique opportunity to measure companion outflow velocity, predict regions of weak and strong lensing, and in principle independently constrain orbital inclinations.
Additional Information
© 2022 The Author(s) Published by Oxford University Press on behalf of Royal Astronomical Society. This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model). We thank the anonymous referee whose comments helped to significantly improve the presentation of this paper. We thank the Scintillometry group at the University of Toronto for general discussions. FXL thanks Luke Pratley for helpful discussions on the correlation coefficient. ULP receives support from Ontario Research Fund-research Excellence Program (ORF-RE), Natural Sciences and Engineering Research Council of Canada (NSERC) [funding reference number RGPIN-2019-067, CRD 523638-18, 555585-20], Canadian Institute for Advanced Research (CIFAR), the National Science Foundation of China (grants no. 11929301), Thoth Technology Inc, Alexander von Humboldt Foundation, and the National Science and Technology Council (NSTC) of Taiwan (111-2123-M-001 -008-, and 111-2811-M-001-040-). The analysis made extensive use of the SCIPY, NUMPY (Virtanen et al. 2020), and ASTROPY (Astropy Collaboration 2013, 2018) packages. DATA AVAILABILITY. The data underlying this article are available upon reasonable request to the corresponding author.Attached Files
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Identifiers
- Eprint ID
- 119638
- Resolver ID
- CaltechAUTHORS:20230302-365334800.6
Funding
- Ontario Research Fund-Research Excellence
- Natural Sciences and Engineering Research Council of Canada (NSERC)
- RGPIN-2019-067
- Natural Sciences and Engineering Research Council of Canada (NSERC)
- CRD 523638-18
- Natural Sciences and Engineering Research Council of Canada (NSERC)
- 555585-20
- Canadian Institute for Advanced Research (CIFAR)
- National Natural Science Foundation of China
- 11929301
- Thoth Technology Inc.
- Alexander von Humboldt Foundation
- National Science Council (Taipei)
- 111-2123-M-001-008
- National Science Council (Taipei)
- 111-2811-M-001-040
Dates
- Created
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2023-05-17Created from EPrint's datestamp field
- Updated
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2023-05-17Created from EPrint's last_modified field