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We firstly revisit the energy loss mechanism known as quantum vacuum friction (QVF), clarifying some of its subtleties. Then we investigate the observables that could easily differentiate QVF from the classical magnetic dipole radiation for…

High Energy Astrophysical Phenomena · Physics 2016-05-31 Jaziel G. Coelho , Jonas P. Pereira , José C. N. de Araujo

Magnetars are proposed to be peculiar neutron stars which could power their X-ray radiation by super-strong magnetic fields as high as $\gtrsim 10^{14}$ G. However, no direct evidence for such strong fields is obtained till now, and the…

High Energy Astrophysical Phenomena · Physics 2016-01-20 Xue-Yu Xiong , Chun-Yuan Gao , Ren-Xin Xu

Pulsars are highly magnetized and rapidly rotating neutron stars. The magnetic field can reach the critical magnetic field from which quantum effects of the vacuum becomes relevant, giving rise to magnetooptic properties of vacuum…

High Energy Astrophysical Phenomena · Physics 2013-10-09 Brahim Lamine , Clément Berthière , Arnaud Dupays

In this letter we calculate the energy loss of highly magnetized neutron star due to friction with quantum vacuum, namely Quantum Vacuum Friction (QVF). Taking into account one-loop corrections in the effective Heisenberg-Euler Lagrangian…

Astrophysics · Physics 2009-06-23 Arnaud Dupays , Carlo Rizzo , Dimitar Bakalov , Giovanni F. Bignami

The evolutions of a neutron star's rotation and magnetic field (B-field) have remained unsolved puzzles for over half a century. We ascribe the rotational braking torques of pulsar to both components, the standard magnetic dipole radiation…

High Energy Astrophysical Phenomena · Physics 2022-12-12 Cheng-Min Zhang , Xiang-Han Cui , Di Li , De-Hua Wang , Shuang-Qiang Wang , Na Wang , Jian-Wei Zhang , Bo Peng , Wei-Wei Zhu , Yi-Yan Yang , Yuan-Yue Pan

Pulsars are rotating neutron stars that are seen to slow down, and the spin-down rate is thought to be due to magnetic dipole radiation. This leads to a prediction for the braking index n, which is a combination of spin period and its first…

Solar and Stellar Astrophysics · Physics 2013-04-10 Wynn C. G. Ho , Nils Andersson

The pulsar wind model is updated by considering the effect of particle density and pulsar death. It can describe both the short term and long term rotational evolution of pulsars consistently. It is applied to model the rotational evolution…

High Energy Astrophysical Phenomena · Physics 2015-06-23 F. F. Kou , H. Tong

Phase transitions can play an important role in the cosmological constant problem, allowing the underlying vacuum energy, and therefore the value of the cosmological constant, to change. Deep within the core of neutron stars, the local…

General Relativity and Quantum Cosmology · Physics 2025-02-03 Giulia Ventagli , Pedro G. S. Fernandes , Andrea Maselli , Antonio Padilla , Thomas P. Sotiriou

Because of the quantum fluid properties of a neutron star core's neutrons and protons, its magnetic field is expected to be coupled strongly to its spin. This predicts a simple evolution of the surface-field of such stars as they spin down…

Astrophysics · Physics 2007-05-23 M. Ruderman

Pulsars are famous for their rotational stability. Most of them steadily spin down and display a highly repetitive pulse shape. But some pulsars experience timing irregularities such as nulling, intermittency, mode changing and timing…

High Energy Astrophysical Phenomena · Physics 2015-09-23 Lev Arzamasskiy , Alexander Philippov , Alexander Tchekhovskoy

(Abridged) The rotational evolution of isolated neutron stars is dominated by the magnetic field anchored to the solid crust of the star. Assuming that the core field evolves on much longer timescales, the crustal field evolves mainly…

Solar and Stellar Astrophysics · Physics 2013-06-11 Jose A. Pons , Daniele Vigano , Ulrich Geppert

In this paper, we discuss the impact of rotation on the particle composition of rotating neutron stars (pulsars). Particular emphasis is put on the formation of quark matter during stellar spin-down, driven by continuous gravitational…

High Energy Astrophysical Phenomena · Physics 2017-09-06 R. D. Mellinger , F. Weber , W. Spinella , G. A. Contrera , M. Orsaria

Quasi-periodic oscillations have been seen in the light curves following several magnetar giant flares. These oscillations are of great interest as they probably provide our first ever view of the normal modes of oscillation of neutron…

Solar and Stellar Astrophysics · Physics 2015-06-16 K. Glampedakis , D. I. Jones

During the evolution of a pulsar, various phase transitions may occur in its dense interior, such as superfluid transition, as well as transition to various exotic phases of quantum chromodynamics (QCD). We propose a technique which allows…

High Energy Astrophysical Phenomena · Physics 2014-12-16 Partha Bagchi , Arpan Das , Biswanath Layek , Ajit M. Srivastava

Observations of gravitational waves from neutron star mergers open up novel directions for exploring fundamental physics: they offer the first access to the structure of objects with a non-negligible contribution from vacuum energy to their…

High Energy Astrophysical Phenomena · Physics 2018-10-17 Csaba Csáki , Cem Eröncel , Jay Hubisz , Gabriele Rigo , John Terning

The energy loss of a rotationally powered pulsar is primarily carried away as electromagnetic radiation and a particle wind. Considering that the magnetic field strength of pulsars ranges from about $10^8$ to $10^{15}$ G, one could expect…

High Energy Astrophysical Phenomena · Physics 2019-04-24 Paul Ripoche , Jeremy Heyl

Pulsars are highly-magnetised rotating neutron stars and are well-known for the stability of their signature pulse shapes, allowing high-precision studies of their rotation. However, during the past 22 years, the radio pulse profile of the…

High Energy Astrophysical Phenomena · Physics 2013-11-05 Andrew Lyne , Francis Graham-Smith , Patrick Weltevrede , Christine Jordan , Ben Stappers , Cees Bassa , Michael Kramer

Rotation in massive stars has been studied on the main sequence and during helium burning for decades, but only recently have realistic numerical simulations followed the transport of angular momentum that occurs during more advanced stages…

Astrophysics · Physics 2007-05-23 A. Heger , S. E. Woosley , N. Langer , H. C. Spruit

We consider the magnetic and spin evolution of isolated neutron stars assuming that the magnetic field is initially confined to the crust. The evolution of the crustal field is determined by the conductive properties of the crust which, in…

Astrophysics · Physics 2015-06-24 Vadim Urpin , Denis Konenkov

Gravitational, magnetic and superfluid forces can stress the crust of an evolving neutron star. Fracture of the crust under these stresses could affect the star's spin evolution and generate high-energy emission. We study the growth of…

Astrophysics · Physics 2009-10-31 Lucia M. Franco , Bennett Link , Richard I. Epstein
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