Coherent storage and phase modulation of single hard x-ray photons using nuclear excitons
arXiv:1205.5503 · doi:10.1103/PhysRevLett.109.197403
Abstract
Coherent storage and phase modulation of x-ray single-photon wave packets in resonant scattering of light off nuclei is investigated theoretically. We show that by switching off and on again the magnetic field in the nuclear sample, phase-sensitive storage of photons in the keV regime can be achieved. Corresponding phase modulation of the stored photon can be accomplished if the retrieving magnetic field is rotated by . The development of such x-ray single-photon control techniques is a first step towards forwarding quantum optics and quantum information to shorter wavelengths and more compact photonic devices.
12 pages, 6 figures; v2 modified to match the published version, condensed to 4 figures, results unchanged
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- Shaping the Phase of a Single Photon
- Electromagnetically induced transparency for x rays
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- All-Electromagnetic Control of Broadband Quantum Excitations Using Gradient Photon Echoes
- Probing few-excitation eigenstates of interacting atoms on a lattice by observing their collective light emission in the far field
- An x-ray quantum eraser setup for time-energy complementarity
- Temporal dynamics of stimulated emission with applications in nuclear quantum optics