XAO OpenIR
在超强磁场中修正的相对论电子压强
Alternative TitleModified pressure of relativistic electrons in a superhigh magnetic field
Dong, Ai-Jun1,2,4; Gao, Zhi-Fu2; Yang, Xiao-Feng2; Wang, Na2; Liu, Chang1; Peng, Qiu-He3
2023-02-05
Source PublicationACTA PHYSICA SINICA
ISSN1000-3290
Volume72Issue:3Pages:82-96
Contribution Rank2
AbstractMagnetar is a kind of pulsar powered by magnetic field energy. The study of magnetars is an important hotspot in the field of pulsars. In this paper, according to the work of Zhu Cui, et al. (Zhu C, Gao Z F, Li X D, Wang N, Yuan J P, Peng Q H 2016 Mod. Phys. Lett. A 31 1650070), we reinvestigate the Landau-level stability of electrons in a superhigh magnetic field (SMF), B >> B-cr (B-cr is a quantum critical magnetic field with a value of 4.414x10(13) G), and its influence on the pressure of electrons in magnetar. First, we briefly review the pressure of electrons in neutron star (NS) with a weak-magnetic field limit (B << B-cr). Then, we introduce an electron Landau level stability coefficient g(v) and a Dirac-delta function to deduce a modified pressure formula for the degenerate and relativistic electrons in an SMF in an application range of matter density rho >= 10(7) g.cm(-3) and B-cr << B < 10(17) G. By modifying the phase space of relativistic electrons, the SMF can enhance the electron number density n(e), and reduce the maximum of electron Landau level number v(max), which results in a redistribution of electrons. As B increases, more and more electrons will occupy higher Landau levels, and the electron Landau level stability coefficient g(v) will decrease with the augment of Landau energy-level number v. By modifying the phase space of relativistic electrons, the electron number density n(e) increases with the MF strength increasing, leading the electron pressure Pe to increase. Utilizing the modified expression of electron pressure, we discuss the phenomena of Fermion spin polarization and electron magnetization in the SMF, and the modification of the equation of state by the SMF. We calculate the baryon number density, magnetization pressure, and the difference between pressures in the direction parallel to and perpendicular to the magnetic field in the frame of the relativistic mean field model. Moreover, we find that the pressure anisotropy due to the strong magnetic field is very small and can be ignored in the present model. We compare our results with the results from other similar studies, and examine their similarities and dissimilarities. The similarities include 1) the abnormal magnetic moments of electrons and the interaction between them are ignored; 2) the electron pressure relate to magnetic field intensity B, electron number density n(e) and electron Fermi energy E-F(e), and the latter two are complex functions containing B; 3) with n(e) and E-F(e) fixed, P-e increases with B rising; 4) as B increases, the pressure-density curves fitted by the results from other similar studies have irregular protrusions or fluctuations, which are caused by the transformation of electron energy state from partial filling to complete filling at the v-level or the transition of electrons from the v to the (v+1)-level. This phenomenon is believed to relate to the behavior of electrons near the Fermi surface in a strong magnetic field, which essentially reflects the Landau level instability. Finally, the future research direction is prospected. The present results provide a reference for future studies of the equation of state and emission mechanism of high-B pulsar, magnetar and strongly magnetized white dwarf.
Keywordsuperhigh magnetic field Landau level magnetars magnetization
DOI10.7498/aps.72.20220092
Indexed BySCI
Language中文
WOS KeywordEQUATIONS ; STATE ; MASS
Funding ProjectNational Natural Science Foundation of China[12041304] ; National Natural Science Foundation of China[U1831120] ; Natural Science Foundation of Xinjiang Uygur Autonomous Region, China[2022D01A155] ; Natural Science Foundation of Guizhou, China[[2019] 1241] ; Natural Science Foundation of Guizhou, China[(2020) 003] ; High Level Talent Program support project of Chinese Academy of Sciences, China[[2019] 085]
WOS Research AreaPhysics
WOS SubjectPhysics, Multidisciplinary
WOS IDWOS:001008598400017
PublisherCHINESE PHYSICAL SOC
Funding OrganizationNational Natural Science Foundation of China ; Natural Science Foundation of Xinjiang Uygur Autonomous Region, China ; Natural Science Foundation of Guizhou, China ; High Level Talent Program support project of Chinese Academy of Sciences, China
Citation statistics
Cited Times:7[WOS]   [WOS Record]     [Related Records in WOS]
Document Type期刊论文
Identifierhttp://ir.xao.ac.cn/handle/45760611-7/5272
Collection中国科学院新疆天文台
Corresponding AuthorGao, Zhi-Fu
Affiliation1.Guizhou Normal Univ, Sch Phys & Elect Sci, Guiyang 550001, Peoples R China
2.Chinese Acad Sci, Xinjiang Astron Observ, Urumqi 830011, Peoples R China
3.Nanjing Univ, Sch Astron & Space Sci, Nanjing 210000, Peoples R China
4.Guizhou Prov Key Lab Radio Data Proc, Guiyang 550001, Peoples R China
First Author AffilicationXinjiang Astronomical Observatory, Chinese Academy of Sciences
Corresponding Author AffilicationXinjiang Astronomical Observatory, Chinese Academy of Sciences
Recommended Citation
GB/T 7714
Dong, Ai-Jun,Gao, Zhi-Fu,Yang, Xiao-Feng,等. 在超强磁场中修正的相对论电子压强[J]. ACTA PHYSICA SINICA,2023,72(3):82-96.
APA Dong, Ai-Jun,Gao, Zhi-Fu,Yang, Xiao-Feng,Wang, Na,Liu, Chang,&Peng, Qiu-He.(2023).在超强磁场中修正的相对论电子压强.ACTA PHYSICA SINICA,72(3),82-96.
MLA Dong, Ai-Jun,et al."在超强磁场中修正的相对论电子压强".ACTA PHYSICA SINICA 72.3(2023):82-96.
Files in This Item:
File Name/Size DocType Version Access License
???-2023-???????????(1933KB)期刊论文出版稿开放获取CC BY-NC-SAView Application Full Text
Related Services
Recommend this item
Bookmark
Usage statistics
Export to Endnote
Google Scholar
Similar articles in Google Scholar
[Dong, Ai-Jun]'s Articles
[Gao, Zhi-Fu]'s Articles
[Yang, Xiao-Feng]'s Articles
Baidu academic
Similar articles in Baidu academic
[Dong, Ai-Jun]'s Articles
[Gao, Zhi-Fu]'s Articles
[Yang, Xiao-Feng]'s Articles
Bing Scholar
Similar articles in Bing Scholar
[Dong, Ai-Jun]'s Articles
[Gao, Zhi-Fu]'s Articles
[Yang, Xiao-Feng]'s Articles
Terms of Use
No data!
Social Bookmark/Share
File name: ???-2023-????????????????.pdf
Format: Adobe PDF
This file does not support browsing at this time
All comments (0)
No comment.
 

Items in the repository are protected by copyright, with all rights reserved, unless otherwise indicated.