Graviton detection and the quantization of gravity
arXiv:2308.12988 · doi:10.1103/PhysRevD.109.044009
Abstract
We revisit a question asked by Dyson: "Is a graviton detectable?" We demonstrate that in both Dyson's original sense and in a more modern measurement-theoretic sense, it is possible to construct a detector sensitive to single gravitons, and in fact a variety of existing and near-term gravitational wave detectors can achieve this. However, while such a signal would be consistent with the quantization of the gravitational field, we draw on results from quantum optics to show how the same signal could just as well be explained via classical gravitational waves. We outline the kind of measurements that would be needed to demonstrate quantization of gravitational radiation and explain why these are substantially more difficult than simply counting graviton clicks or observing gravitational noise in an interferometer, and likely impossible to perform in practice.
10+7 pages, 2 figures
References in corpus (6)
- Gravitational Waves as a Big Bang Thermometer
- Primordial Deuterium after LUNA: concordances and error budget
- The Impact of New d(p,γ)He3 Rates on Big Bang Nucleosynthesis
- Aspects of Graviton Detection: Graviton Emission and Absorption by Atomic Hydrogen
- Comparing Instrument Spectral Sensitivity of Dissimilar Electromagnetic Haloscopes to Axion Dark Matter and High Frequency Gravitational Waves
- Shimmering gravitons in the gamma-ray sky
Cited by in corpus (33)
- Ultrahigh frequency primordial gravitational waves beyond the kHz: The case of cosmic strings
- A Quantum Description of Wave Dark Matter
- Searching for High Frequency Gravitational Waves with Phonons
- Enhanced primordial gravitational waves from a stiff post-inflationary era due to an oscillating inflaton
- Testing Whether Gravity Acts as a Quantum Entity When Measured
- Gravity generated by four one-dimensional unitary gauge symmetries and the Standard Model
- Entanglement in Cosmology
- Detecting kHz gravitons from a neutron star merger with a multi-mode resonant mass detector
- Superradiant Axionic Black-Hole Clouds as Seeds for Graviton Squeezing
- Quantum-gravitational noise correlation in nearby detectors
- Graviton topology
- Coherent State Description of Gravitational Waves from Binary Black Holes
- Squeezed gravitons from superradiant axion fields around rotating black holes
- Quantum decoherence of gravitational waves
- Entanglement and squeezing of gravitational waves
- The Role of Quantum Measurements when Testing the Quantum Nature of Gravity
- Response of interferometers to the vacuum of quantum gravity
- Nonlinear Ringdowns as Sources and Detectors of Quantum Gravitational Waves
- QuGrav: Bringing gravitational waves to light with Qumodes
- Classical-quantum scattering
- Graviton-Photon Oscillations as a Probe of Quantum Gravity
- Quantum-induced Stochastic Optomechanical Dynamics
- Measurement-induced entanglement entropy of gravitational wave detections
- Violation of the Leggett-Garg inequality in photon-graviton conversion
- Signatures of an Entangled Graviton Duet
- From equivalent Lagrangians to inequivalent open quantum system dynamics
- Energy Balance of a Boson Gas at Zero Temperature in Curved Spacetime
- The Gravito-Phononic Effect: A Quantum Signature of Linearised Gravity
- Is graviton shot noise detectable?
- Wave-particle duality in the measurement of gravitational radiation
- Stimulated absorption of single gravitons: First light on quantum gravity
- Infeasibility of Graviton Detection as Cosmic Censorship
- Comments on graviton detection