The central compact objects are a newly emerging class of young neutron stars near the centre of supernova remnants. From X-ray timing and spectral measurements, their magnetic fields are determined to be ?1010–1011 G, which is significantly lower than that found on most pulsars. Using the latest electrical and thermal conductivity calculations, we solve the induction equation to determine the evolution of a buried crustal or core magnetic field. We apply this model of a buried field to explain the youth and low observed magnetic field of the central compact objects. We obtain constraints on their birth magnetic field and depth of submergence (or accreted mass). Measurement of a change in the observed magnetic field strength would discrimin...
Neutron stars host the strongest magnetic fields that we know of in the Universe. Their magnetic fie...
Neutron stars are natural physical laboratories allowing us to study a plethora of phenomena in extr...
A superconductor of paired protons is thought to form in the core of neutron stars soon after their ...
Central compact objects (CCOs) are X-ray sources lying close to the centre of supernova remnants, wi...
The observation of several neutron stars in the centre of supernova remnants and with significantly ...
Central Compact Objects (CCOs) are X-ray sources with luminosity ranging between 1032-1034 erg s−1, ...
The measurement of the period derivative and the canonical model of dipole radiation have provided m...
We apply the model of flux expulsion from the superfluid and superconductive core of a neutron star,...
In the standard scenario for spin evolution of isolated neutron stars, a young pulsar slows down wit...
Sorry, the full-text is not available here. Please click on the alternative location to access it.T...
Diamond jubilee symposium on pulsars,14-17 March 1994, RRI, Bangalore.Observational evidence, and th...
Sorry, the full-text is not available here. Please click on the alternative location.We investigate...
This paper intends to give a broad overview of the present knowledge about neutron star magnetic fie...
This paper reviews the current status of the theoretical models of the evolution of the magnetic fie...
Abstract. The radio pulsar models based on the existence of an inner accelerating gap located above ...
Neutron stars host the strongest magnetic fields that we know of in the Universe. Their magnetic fie...
Neutron stars are natural physical laboratories allowing us to study a plethora of phenomena in extr...
A superconductor of paired protons is thought to form in the core of neutron stars soon after their ...
Central compact objects (CCOs) are X-ray sources lying close to the centre of supernova remnants, wi...
The observation of several neutron stars in the centre of supernova remnants and with significantly ...
Central Compact Objects (CCOs) are X-ray sources with luminosity ranging between 1032-1034 erg s−1, ...
The measurement of the period derivative and the canonical model of dipole radiation have provided m...
We apply the model of flux expulsion from the superfluid and superconductive core of a neutron star,...
In the standard scenario for spin evolution of isolated neutron stars, a young pulsar slows down wit...
Sorry, the full-text is not available here. Please click on the alternative location to access it.T...
Diamond jubilee symposium on pulsars,14-17 March 1994, RRI, Bangalore.Observational evidence, and th...
Sorry, the full-text is not available here. Please click on the alternative location.We investigate...
This paper intends to give a broad overview of the present knowledge about neutron star magnetic fie...
This paper reviews the current status of the theoretical models of the evolution of the magnetic fie...
Abstract. The radio pulsar models based on the existence of an inner accelerating gap located above ...
Neutron stars host the strongest magnetic fields that we know of in the Universe. Their magnetic fie...
Neutron stars are natural physical laboratories allowing us to study a plethora of phenomena in extr...
A superconductor of paired protons is thought to form in the core of neutron stars soon after their ...