Ballicchia, M., Etl, C., Nedjalkov, M., Ferry, D. K., Kosina, H., & Weinbub, J. (2026). Approximate Wigner approach to Coulomb entanglement. Annals of Physics, 487, Article 170356. https://doi.org/10.1016/j.aop.2026.170356
Coulomb interaction; Entanglement; Fredholm integral equation; Gauge-invariant quantum mechanics; Phase space trajectories; Wigner function
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Abstract:
The electric interaction between two nearby evolving electrons triggers the correlation between their waves and governs the operation of logical devices called Coulomb entanglers. Of technological interest, in the presence of magnetic fields, are multi-spatial evolution scenarios beyond pure state descriptions. The two-electron density matrix becomes eight-dimensional even for two-dimensional spatial cases, and is thus computationally prohibitive. In this work, we present two new approximations of the two-electron Wigner equation that aim at computational feasibility: a BBGKY approach for reducing the number of variables and a field approximation of the Coulomb-Wigner operator. They exhibit different conceptual aspects that illustrate alternative viewpoints on entanglement: only the evolution provided by the latter model satisfies the orthodox definition of entanglement. Our analysis, based on the Fredholm integral representation of the models, allows us to develop an intuitive picture and physical insight into the process.
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Research facilities:
Vienna Scientific Cluster
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Project title:
Wigner Transport Dynamik von verschränkten Elektronen: P 37080-N (FWF - Österr. Wissenschaftsfonds)
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Research Areas:
Quantum Modeling and Simulation: 50% Nanoelectronics: 50%