Gravitational microlensing in Verlinde's emergent gravity
We propose gravitational microlensing as a way of testing the emergent gravity theory recently proposed by Eric Verlinde [1]. We consider two limiting cases: the dark mass of maximally anisotropic pressures (Case I) and of isotropic pressures (Case II). Our analysis of perihelion advancement of a pl...
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doaj-721d94ec149f440a8918eb440dc01f3c2020-11-24T20:42:16ZengElsevierPhysics Letters B0370-26931873-24452017-06-01769C28128810.1016/j.physletb.2017.03.061Gravitational microlensing in Verlinde's emergent gravityLei-Hua LiuTomislav ProkopecWe propose gravitational microlensing as a way of testing the emergent gravity theory recently proposed by Eric Verlinde [1]. We consider two limiting cases: the dark mass of maximally anisotropic pressures (Case I) and of isotropic pressures (Case II). Our analysis of perihelion advancement of a planet shows that only Case I yields a viable theory. In this case the metric outside a star of mass M⁎ can be modeled by that of a point-like global monopole whose mass is M⁎ and a deficit angle Δ=(2GH0M⁎)/(3c3), where H0 is the Hubble rate and G the Newton constant. This deficit angle can be used to test the theory since light exhibits additional bending around stars given by, αD≈−πΔ/2. This angle is independent on the distance from the star and it affects equally light and massive particles. The effect is too small to be measurable today, but should be within reach of the next generation of high resolution telescopes. Finally we note that the advancement of periastron of a planet orbiting around a star or black hole, which equals πΔ per period, can be also used to test the theory.http://www.sciencedirect.com/science/article/pii/S0370269317302526 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lei-Hua Liu Tomislav Prokopec |
spellingShingle |
Lei-Hua Liu Tomislav Prokopec Gravitational microlensing in Verlinde's emergent gravity Physics Letters B |
author_facet |
Lei-Hua Liu Tomislav Prokopec |
author_sort |
Lei-Hua Liu |
title |
Gravitational microlensing in Verlinde's emergent gravity |
title_short |
Gravitational microlensing in Verlinde's emergent gravity |
title_full |
Gravitational microlensing in Verlinde's emergent gravity |
title_fullStr |
Gravitational microlensing in Verlinde's emergent gravity |
title_full_unstemmed |
Gravitational microlensing in Verlinde's emergent gravity |
title_sort |
gravitational microlensing in verlinde's emergent gravity |
publisher |
Elsevier |
series |
Physics Letters B |
issn |
0370-2693 1873-2445 |
publishDate |
2017-06-01 |
description |
We propose gravitational microlensing as a way of testing the emergent gravity theory recently proposed by Eric Verlinde [1]. We consider two limiting cases: the dark mass of maximally anisotropic pressures (Case I) and of isotropic pressures (Case II). Our analysis of perihelion advancement of a planet shows that only Case I yields a viable theory. In this case the metric outside a star of mass M⁎ can be modeled by that of a point-like global monopole whose mass is M⁎ and a deficit angle Δ=(2GH0M⁎)/(3c3), where H0 is the Hubble rate and G the Newton constant. This deficit angle can be used to test the theory since light exhibits additional bending around stars given by, αD≈−πΔ/2. This angle is independent on the distance from the star and it affects equally light and massive particles. The effect is too small to be measurable today, but should be within reach of the next generation of high resolution telescopes. Finally we note that the advancement of periastron of a planet orbiting around a star or black hole, which equals πΔ per period, can be also used to test the theory. |
url |
http://www.sciencedirect.com/science/article/pii/S0370269317302526 |
work_keys_str_mv |
AT leihualiu gravitationalmicrolensinginverlindesemergentgravity AT tomislavprokopec gravitationalmicrolensinginverlindesemergentgravity |
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1716822780101525504 |