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Black Hole

Lensing of space time around a black hole. At Oxford we study black holes observationally and theoretically on all size and time scales - it is some of our core work.

Credit: ALAIN RIAZUELO, IAP/UPMC/CNRS. CLICK HERE TO VIEW MORE IMAGES.

Joseph Silk

Emeritus Savilian Professor

Sub department

  • Astrophysics

Research groups

  • Beecroft Institute for Particle Astrophysics and Cosmology
joseph.silk@physics.ox.ac.uk
Telephone: 01865 (2)73300
Denys Wilkinson Building, room 532G
  • About
  • Publications

A PARTICLE DARK MATTER FOOTPRINT ON THE FIRST GENERATION OF STARS

The Astrophysical Journal American Astronomical Society 786:1 (2014) 25

Authors:

Ilídio Lopes, Joseph Silk
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3D simulations of the early stages of AGN jets: geometry, thermodynamics and backflow

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 439:3 (2014) 2903-2916

Authors:

S Cielo, V Antonuccio-Delogu, AV Macciò, AD Romeo, J Silk
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Black hole evolution: II. Spinning black holes in a supernova-driven turbulent interstellar medium

Monthly Notices of the Royal Astronomical Society Oxford University Press 440:3 (2014) 2333-2346

Authors:

Y Dubois, M Volonteri, J Silk, Julien Devriendt, Adrianne Slyz

Abstract:

Supermassive black holes (BH) accrete gas from their surroundings and coalesce with companions during galaxy mergers, and both processes change the BH mass and spin. By means of high-resolution hydrodynamical simulations of galaxies, either idealised or embedded within the cosmic web, we explore the effects of interstellar gas dynamics and external perturbations on BH spin evolution. All these physical quantities were evolved on-the-fly in a self-consistent manner. We use a 'maximal' model to describe the turbulence induced by stellar feedback to highlight its impact on the angular momentum of the gas accreted by the BH. Periods of intense star formation are followed by phases where stellar feedback drives large-scale outflows and hot bubbles. We find that BH accretion is synchronised with star formation, as only when gas is cold and dense do both processes take place. During such periods, gas motion is dominated by consistent rotation. On the other hand, when stellar feedback becomes substantial, turbulent motion randomises gas angular momentum. However BH accretion is strongly suppressed in that case, as cold and dense gas is lacking. In our cosmological simulation, at very early times (z>6), the galactic disc has not yet settled and no preferred direction exists for the angular momentum of the accreted gas, so the BH spin remains low. As the gas settles into a disc (6>z>3), the BH spin then rapidly reaches its maximal value. At lower redshifts (z<3), even when galaxy mergers flip the direction of the angular momentum of the accreted gas, causing it to counter-rotate, the BH spin magnitude only decreases modestly and temporarily. Should this be a typical evolution scenario for BH, it potentially has dramatic consequences regarding their origin and assembly, as accretion on maximally spinning BH embedded in thin Shakura-Sunyaev disc is significantly reduced.
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Dark matter annihilations and decays after the AMS-02 positron measurements

Physical Review D American Physical Society (APS) 89:6 (2014) 063539

Authors:

Alejandro Ibarra, Anna S Lamperstorfer, Joseph Silk
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Dark matter contribution to Galactic diffuse gamma ray emission

Physical Review D American Physical Society (APS) 89:6 (2014) 063530

Authors:

Lin F Yang, Joseph Silk, Alexander S Szalay, Rosemary FG Wyse, Brandon Bozek, Piero Madau
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