Qutrit and Qubit Circuits for Three-Flavor Collective Neutrino Oscillations
arXiv:2407.13914 · doi:10.1103/PhysRevD.111.043038
Abstract
We explore the utility of qutrits and qubits for simulating the flavor dynamics of dense neutrino systems. The evolution of such systems impacts some important astrophysical processes, such as core-collapse supernovae and the nucleosynthesis of heavy nuclei. Many-body simulations require classical resources beyond current computing capabilities for physically relevant system sizes. Quantum computers are therefore a promising candidate to efficiently simulate the many-body dynamics of collective neutrino oscillations. Previous quantum simulation efforts have primarily focused on properties of the two-flavor approximation due to their direct mapping to qubits. Here, we present new quantum circuits for simulating three-flavor neutrino systems on qutrit- and qubit-based platforms, and demonstrate their feasibility by simulating systems of two, four and eight neutrinos on IBM and Quantinuum quantum computers.
19 pages, 4 tables, 15 figures
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Cited by in corpus (4)
- Collective Neutrino Oscillations in Three Flavors on Qubit and Qutrit Processors
- Exploring entanglement and spectral split correlations in three-flavor collective neutrino oscillations
- Quantum circuits for simulating neutrino propagation in matter
- Fault-Tolerant Encoding of Logical Qudits in Spin Systems