Gravitational Lensing - Einstein's Unfinished Symphony
arXiv:1412.6916 · doi:10.1080/00107514.2015.1006001
Abstract
Gravitational lensing - the deflection of light rays by gravitating matter - has become a major tool in the armoury of the modern cosmologist. Proposed nearly a hundred years ago as a key feature of Einstein's theory of General Relativity, we trace the historical development since its verification at a solar eclipse in 1919. Einstein was apparently cautious about its practical utility and the subject lay dormant observationally for nearly 60 years. Nonetheless there has been rapid progress over the past twenty years. The technique allows astronomers to chart the distribution of dark matter on large and small scales thereby testing predictions of the standard cosmological model which assumes dark matter comprises a massive weakly-interacting particle. By measuring distances and tracing the growth of dark matter structure over cosmic time, gravitational lensing also holds great promise in determining whether the dark energy, postulated to explain the accelerated cosmic expansion, is a vacuum energy density or a failure of General Relativity on large scales. We illustrate the wide range of applications which harness the power of gravitational lensing, from searches for the earliest galaxies magnified by massive clusters to those for extrasolar planets which temporarily brighten a background star. We summarise the future prospects with dedicated ground and space-based facilities designed to exploit this remarkable physical phenomenon.
Contemporary Physics: Invited review to celebrate the United Nations "International Year of Light". 21 pages, 11 figures. Refereed and Accepted. To appear spring 2015
References in corpus (19)
- A direct empirical proof of the existence of dark matter
- The James Webb Space Telescope
- Constraints on the Self-Interaction Cross-Section of Dark Matter from Numerical Simulations of the Merging Galaxy Cluster 1E 0657-5
- A systematic variation of the stellar initial mass function in early-type galaxies
- The Sloan Lens ACS Survey. V. The Full ACS Strong-Lens Sample
- The Detection of a Population of Submillimeter-Bright, Strongly-Lensed Galaxies
- The Structure & Dynamics of Massive Early-type Galaxies: On Homology, Isothermality and Isotropy inside one Effective Radius
- COSMOS: 3D weak lensing and the growth of structure
- Inference of the Cold Dark Matter substructure mass function at z=0.2 using strong gravitational lenses
- The formation and assembly of a typical star-forming galaxy at z~3
- Tying Dark Matter to Baryons with Self-interactions
- A Geometrically Supported Candidate Multiply-Imaged by the Hubble Frontier Fields Cluster Abell 2744
- Detection of substructure with adaptive optics integral field spectroscopy of the gravitational lens B1422+231
- How well can cold-dark-matter substructures account for the observed radio flux-ratio anomalies?
- A Terrestrial Planet in a ~1 AU Orbit Around One Member of a ~15 AU Binary
- The effect of baryons on the inner density profiles of rich clusters
- Measuring the power spectrum of dark matter substructure using strong gravitational lensing
- A calibration of the stellar mass fundamental plane at z ~ 0.5 using the micro-lensing induced flux ratio anomalies of macro-lensed quasars
- A Magnified View of the Kinematics and Morphology of RCSGA 032727-132609: Zooming in on a Merger at z=1.7
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- Finding strong lenses in CFHTLS using convolutional neural networks
- SHARP - III: First Use Of Adaptive Optics Imaging To Constrain Cosmology With Gravitational Lens Time Delays
- SN Refsdal: Classification as a Luminous and Blue SN 1987A-like Type II Supernova
- The inner dark matter distribution of the Cosmic Horseshoe (J1148+1930) with gravitational lensing and dynamics
- H0LiCOW VII. Cosmic evolution of the correlation between black hole mass and host galaxy luminosity
- Discovery of three strongly lensed quasars in the Sloan Digital Sky Survey
- Galaxy cluster cores as seen with VLT/MUSE: new strong-lensing analyses of RX J2129.4+0009, MS 0451.6-0305 & MACSJ2129.4-0741
- The DES Bright Arcs Survey: Candidate Strongly Lensed Galaxy Systems from the Dark Energy Survey 5,000 Sq. Deg. Footprint
- Classifying Lensed Gravitational Waves in the Geometrical Optics Limit with Machine Learning
- From Solar Eclipse of 1919 to the Spectacle of Gravitational Lensing