Active Physics & Astronomy Mathematics & Statistics

Classical and Semiclassical Aspects of Amplitudes

Summary

Original abstract (not yet simplified)

Recently, an entirely new class of observable in quantum field theory has been discovered. These observables, which I discovered with my collaborators, make contact with the exciting physics of gravitational waves, and have been used to determine the state-of-the-art expression for the gravitational waveform emitted as two black holes scatter. Yet these observables, given in terms of scattering amplitudes, also...

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Recently, an entirely new class of observable in quantum field theory has been discovered. These observables, which I discovered with my collaborators, make contact with the exciting physics of gravitational waves, and have been used to determine the state-of-the-art expression for the gravitational waveform emitted as two black holes scatter. Yet these observables, given in terms of scattering amplitudes, also lead to a number of major open questions:1. How can we compute bound state gravitational waveforms from quantum field theory?2. What is the infrared physics of the new observables?3. The observables are quantum-mechanical at their heart. Can we use them to compute the Hawking radiation, for the first time, in full quantum field theory?Answers to these questions will transform our understanding of the quantum field theory of gravity.

Related Research

Grants with similar aims, by meaning.

Applications of scattering amplitudes to classical observables
Exploring quantum aspects of gravitational-wave detectors
Quasi-local observables in quantum gravity
Classical spinning black holes from quantum spinning particles
QFT Methods for Classical Gravity

Original classification

HORIZON

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