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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.

Professor Pedro Ferreira

Professor of Astrophysics

Research theme

  • Particle astrophysics & cosmology

Sub department

  • Astrophysics

Research groups

  • Beecroft Institute for Particle Astrophysics and Cosmology
pedro.ferreira@physics.ox.ac.uk
Telephone: 01865 (2)73366
Denys Wilkinson Building, room 757
  • About
  • Publications

Fifth force constraints from galaxy warps

Physical Review D American Physical Society 98:8 (2018) 083010

Authors:

Harry Desmond, Pedro Ferreira, G Lavaux, J Jasche

Abstract:

Intragalaxy signals contain a wealth of information on fundamental physics, both the dark sector and the nature of gravity. While so far largely unexplored, such probes are set to rise dramatically in importance as upcoming surveys provide data of unprecedented quantity and quality on galaxy structure and dynamics. In this paper, we use warping of stellar disks to test the chameleon- or symmetron-screened fifth forces which generically arise when new fields couple to matter. We take r -band images of mostly late-type galaxies from the Nasa Sloan Atlas and develop an automated algorithm to quantify the degree of U-shaped warping they exhibit. We then forward model the warp signal as a function of fifth-force strength, 螖G/GN, and range, 位C, and the gravitational environments and internal properties of the galaxies, including full propagation of the non-Gaussian uncertainties. Convolving this fifth-force likelihood function with a Gaussian describing astrophysical and observational noise and then constraining 螖G/GN and 位C by Markov chain Monte Carlo, we find the overall likelihood to be significantly increased (螖log(L)鈮20) by adding a screened fifth force with 位C鈮2 Mpc and 螖G/GN鈮0.01. The variation of 螖log(L) with 位C is quantitatively as expected from the correlation of the magnitude of the fifth-force field with the force鈥檚 range, and a similar model without screening achieves no increase in likelihood over the General Relativistic case 螖G=0. Although these results are in good agreement with a previous analysis of the same model using offsets between galaxies鈥 stellar and gas mass centroids [H. Desmond et al., Phys. Rev. D 98, 064015 (2018).], we caution that the effects of confounding baryonic and dark matter physics must be thoroughly investigated for the results of the inference to be unambiguous.

Fifth force constraints from the separation of galaxy mass components

Physical Review D American Physical Society 98:6 (2018)

Authors:

Harry Desmond, Pedro Ferreira, G Lavaux, J Jasche

Abstract:

One of the most common consequences of extensions to the standard models of particle physics or cosmology is the emergence of a fifth force. While generic fifth forces are tightly constrained at Solar System scales and below, they may escape detection by means of a screening mechanism which effectively removes them in dense environments. We constrain the strength 螖G/GN and range 位C of a fifth force with Yukawa coupling arising from a chameleon- or symmetron-screened scalar field鈥攁s well as an unscreened fifth force with differential coupling to galactic mass components鈥攂y searching for the displacement it predicts between galaxies鈥 stellar and gas mass centroids. Taking data from the Alfalfa survey of neutral atomic hydrogen (HI), identifying galaxies鈥 gravitational environments with the maps of [H. Desmond, P.鈥塆. Ferreira, G. Lavaux, and J. Jasche, Mon. Not. R. Astron. Soc. 474, 3152 (2018)] and forward modeling with a Bayesian likelihood framework, we find, with screening included, 6.6蟽 evidence for 螖G>0 at 位C鈮2Mpc. The maximum-likelihood 螖G/GN is 0.025. A similar fifth force model without screening gives no increase in likelihood over the case 螖G=0 for any 位C. Although we validate this result by several methods, we do not claim screened modified gravity to provide the only possible explanation for the data: this conclusion would require knowing that the signal could not be produced by 鈥済alaxy formation鈥 physics. We show also the results of a more conservative鈥攖hough less well-motivated鈥攏oise model which yields only upper limits on 螖G/GN, ranging from 鈭10鈭1 for 位C 鈮 0.5 Mpc to 鈭 few 脳10鈭4 at 位C 鈮 50 Mpc. Corresponding models without screening receive the somewhat stronger bounds 鈭 few 脳10鈭3 and 鈭 few 脳104 respectively. We show how these constraints may be improved by future galaxy surveys and identify the key features of an observational program for directly constraining fifth forces on scales beyond the Solar System. This paper provides a complete description of the analysis summarized in [H. Desmond, P.鈥塆. Ferreira, G. Lavaux, and J. Jasche, arXiv:1802.07206].

Fifth force constraints from galaxy warps

(2018)

Authors:

Harry Desmond, Pedro G Ferreira, Guilhem Lavaux, Jens Jasche

Polarization of a stochastic gravitational wave background through diffusion by massive structures

(2018)

Authors:

Giulia Cusin, Ruth Durrer, Pedro G Ferreira

Fifth force constraints from the separation of galaxy mass components

(2018)

Authors:

Harry Desmond, Pedro G Ferreira, Guilhem Lavaux, Jens Jasche

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