Nonlinear optical effects in a nucleus
arXiv:2008.12956 · doi:10.1088/1361-6471/ac1712
Abstract
Intense laser technologies generate light with unprecedented and growing intensities. The possibility emerges that a nucleus responds nonlinearly to an intense light field, pointing to a yet little explored research area of nuclear nonlinear optics. We consider two-photon and three-photon absorption (with subsequent disintegration) processes of the deuteron, the simplest and the most fundamental nontrivial nucleus, as prototypes of nuclear nonlinear optical effects. Quantitative calculations are performed on these processes and novel observable effects are predicted.
References in corpus (6)
- Ultra-high brilliance multi-MeV -ray beam from non-linear Thomson scattering
- Interferometric phase detection at x-ray energies via Fano resonance control
- Can extreme electromagnetic fields accelerate the decay of nuclei?
- The nuclear AC-Stark shift in super-intense laser fields
- Nuclear fission in intense laser fields
- Substantially enhanced deuteron-triton fusion probabilities in intense low-frequency laser fields