Quantum Effects for Black Holes with On-Shell Amplitudes
arXiv:2509.12111 · doi:10.1007/JHEP12(2025)163
Abstract
We develop a framework based on modern amplitude techniques to analyze emission and absorption effects in black hole physics, including Hawking radiation. We first discuss quantum field theory on a Schwarzschild background in the Boulware and Unruh vacua, and introduce the corresponding -matrices. We use this information to determine on-shell absorptive amplitudes describing processes where a black hole transitions to a different mass state by absorbing or emitting quanta, to all orders in gravitational coupling. This on-shell approach allows for a universal description of black holes, with their intrinsic differences encapsulated in the discontinuities of the amplitudes, without suffering from off-shell ambiguities such as gauge freedom. Furthermore, the absorptive amplitudes serve as building blocks to describe physics beyond that of isolated black holes. As applications, we find that the Hawking thermal spectrum is well understood by three-point processes. We also consider a binary system and compute the mass shift of a black hole induced by the motion of a companion object, including quantum effects. We show that the mean value of the mass shift is classical and vacuum-independent, while its variance differs depending on the vacuum choice. Our results provide confirmation of the validity of the on-shell program in advancing our understanding of black hole physics.
46 pages, 5 figures
References in corpus (26)
- Generalized Unitarity and One-Loop Amplitudes in N=4 Super-Yang-Mills
- Scattering Amplitudes and the Conservative Hamiltonian for Binary Systems at Third Post-Minkowskian Order
- Hawking Radiation and Black Hole Thermodynamics
- Amplitudes, Observables, and Classical Scattering
- Black Hole Binary Dynamics from the Double Copy and Effective Theory
- Higher order WKB formula for quasinormal modes and grey-body factors: recipes for quick and accurate calculations
- Black holes and the double copy
- Gravitational perturbations of the Schwarzschild spacetime: A practical covariant and gauge-invariant formalism
- Scattering of two spinning black holes in post-Minkowskian gravity, to all orders in spin, and effective-one-body mappings
- The gravitational S-matrix
- A Modern Approach to Superradiance
- Scattering amplitudes: the most perfect microscopic structures in the universe
- Emergence of Calabi-Yau manifolds in high-precision black hole scattering
- Effective Field Theory for Extreme Mass Ratios
- Horizon radiation reaction forces
- Observables from the Spinning Eikonal
- An Effective Field Theory of Quantum Mechanical Black Hole Horizons
- Spinning Black Hole Scattering at : Casimir Terms, Radial Action and Hidden Symmetry
- First Look at Quartic-in-Spin Binary Dynamics at Third Post-Minkowskian Order
- Vanishing of Quadratic Love Numbers of Schwarzschild Black Holes
- Virtual Hawking Radiation
- Massive twistor worldline in electromagnetic fields
- Radiation eikonal for post-Minkowskian observables
- Classification of Feynman integral geometries for black-hole scattering at 5PM order
- Spinning waveforms of scalar radiation in quadratic modified gravity
- The hierarchical three-body problem at