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Entanglement Witness for Indistinguishable Electrons using Solid-State Spectroscopy
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Characterizing entanglement in quantum materials is crucial for advancing next-generation quantum technologies. Despite recent strides in witnessing entanglement in magnetic materials with distinguishable spin modes, quantifying entanglement in systems formed by indistinguishable electrons remains a formidable challenge. To solve this problem, we introduce a method to extract various four-fermion correlations by analyzing the nonlinearity in resonant inelastic x-ray scattering spectra. These correlations constitute the primary components of the cumulant two-particle reduced density matrix. We further derive bounds for its eigenvalues and demonstrate the linear scaling with fermionic entanglement depth, providing a reliable witness for entanglement. Using the material-relevant strongly correlated models as examples, we show how this entanglement witness can efficiently quantify multipartite entanglement across different phase regions, highlighting its advantage over quantum Fisher information.
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Majorana Signatures in the Tripartite Uncertainty Relations with Quantum Memory
For a specific ground state of two quantum dots coupled via Majorana modes, the tripartite entropic uncertainty relation is always saturated, and the uncertainty decreases monotonically as the Majorana overlap grows.
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