On the Interpretation of the Redshift in a Static Gravitational Field
arXiv:physics/9907017 · doi:10.1119/1.19382
Abstract
The classical phenomenon of the redshift of light in a static gravitational potential, usually called the gravitational redshift, is described in the literature essentially in two ways: on the one hand the phenomenon is explained through the behaviour of clocks which run the faster the higher they are located in the potential, whereas the energy and frequency of the propagating photon do not change with height. The light thus appears to be redshifted relative to the frequency of the clock. On the other hand the phenomenon is alternatively discussed (even in some authoritative texts) in terms of an energy loss of a photon as it overcomes the gravitational attraction of the massive body. This second approach operates with notions such as the "gravitational mass" or the "potential energy" of a photon and we assert that it is misleading. We do not claim to present any original ideas or to give a comprehensive review of the subject, our goal being essentially a pedagogical one.
latex, 16 pages, to be published in American Journal of Physics
Cited by in corpus (16)
- Gravitomagnetic Effects in the Propagation of Electromagnetic Waves in Variable Gravitational Fields of Arbitrary-Moving and Spinning Bodies
- Photons and static gravity
- Redshifts and Killing Vectors
- Probing Brane-World Scenarios with Vacuum Refraction of Light Using Gamma-Ray Bursts
- On the gravitational redshift
- A constraint on antigravity of antimatter from precision spectroscopy of simple atoms
- A thought experiment with clocks in static gravity
- Introduction to gravitational redshift of quantum photons propagating in curved spacetime
- Photons, Clocks, Gravity and the Concept of Mass
- On the Doppler effect for photons in rotating systems
- Electromagnetic Waves in a Uniform Gravitational Field and Planck's Postulate
- Electrostatic Time Dilation and Redshift
- Black-Body Radiation in a Uniformly Accelerated Frame
- Quantum interferometry in external gravitational fields
- Quantum Fluctuations of the Gravitational Field and Propagation of Light: a Heuristic Approach
- Limits to the validity of gravitational redshift as a quantum-optical multimode mixer