Entanglement of Orbital Angular Momentum in Non-Sequential Double Ionization
arXiv:2111.10148 · doi:10.1038/s41467-022-32128-z
Abstract
We demonstrate entanglement between the orbital angular momentum (OAM) of two photoelectrons ionized via the strongly correlated process of non-sequential double ionization (NSDI). Due to the quantization of OAM, this entanglement is easily quantified and has a simple physical interpretation in terms of conservation laws. We explore detection by an entanglement witness, decomposable into local measurements, which strongly reduces the difficulty of experimental implementation. We compute the logarithmic negativity measure, which is directly applicable to mixed states, to demonstrate that the entanglement is robust to incoherent effects such as focal averaging. Using the strong-field approximation, we quantify the entanglement for a large range of targets and field parameters, isolating the best targets for experimentalists. The methodology presented here provides a general way to use OAM to quantify and, in principle, measure entanglement, that is well-suited to attosecond processes, can enhance our understanding and may be exploited in imaging processes or the generation of OAM-entangled electrons.
16 pages, 4 figures
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- Light-matter entanglement after above-threshold ionization processes in atoms
- Theory of entanglement and measurement in high harmonic generation
- Measuring the quantum state of photoelectrons
- Generation of entanglement using a short-wavelength seeded free-electron laser
- Strong-field chiral imaging with twisted photoelectrons
- Impact of the continuum Coulomb interaction in quantum-orbit-based treatments of high-order above-threshold ionization
- Detangling the quantum tapestry of intra-channel interference in below-threshold nonsequential double ionization with few-cycle laser pulses
- Ultrafast preparation and strong-field ionization of an atomic Bell-like state
- Parametric model for high-order harmonic generation with quantized fields
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- Unravelling inter-channel quantum interference in below-threshold nonsequential double ionization with statistical measures
- Composable Finite-Size Security of High-Dimensional Quantum Key Distribution Protocols