Electromagnetic Emission post Spinning Black Hole-Magnetized Neutron Star Mergers
Shu-Qing Zhong, Zi-Gao Dai, Can-Min Deng

TL;DR
This paper explores electromagnetic emissions resulting from magnetic reconnection, shocks, and energy extraction mechanisms following a spinning black hole and magnetized neutron star merger, highlighting potential observable signals within milliseconds post-merger.
Contribution
It introduces a novel scenario where a charged spinning black hole creates a force-free magnetosphere, leading to three distinct electromagnetic emission mechanisms after a BH-NS merger.
Findings
Magnetic reconnection can produce millisecond bright EM signals.
Reconnection shocks may generate fast radio bursts.
Blandford-Znajek process can emit high-energy bursts.
Abstract
For a binary composed of a spinning black hole (BH) (with mass ) and a strongly magnetized neutron star (NS) (with surface magnetic field strength \,G and mass ), the NS as a whole will possibly eventually plunge into the BH. During the inspiral phase, the spinning BH could be charged to the Wald charge quantity until merger in an electro-vacuum approximation. During the merger, if the spinning charged BH creates its own magnetosphere due to an electric field strong enough for pair cascades to spark, the charged BH would transit from electro-vacuum to force-free cases and could discharge in a time . As the force-free magnetosphere is full of a highly conducting plasma, the magnetic flux over the NS's caps would be retained outside the BH's event horizon under the frozen-in condition. Based on…
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