paper

Analytic Benchmarks for Coherence-to-Entanglement Conversion under Post-Gate Noise in CNOT-Based Protocols

arXiv:2606.16916

Abstract

Coherence-to-entanglement conversion transforms single-qubit superposition into a practical two-qubit resource, but noise limits this process in near-term quantum hardware. We derive closed-form benchmarks for a minimal CNOT primitive in which a coherent qubit and an incoherent ancilla generate entanglement before undergoing phase damping, global depolarizing, amplitude damping, or independent local depolarizing noise. Using the -norm of coherence and negativity, we prove the noiseless law , valid for arbitrary mixed inputs, and obtain exact negativities, survival fractions, and entanglement-sudden-death thresholds. For all -state-preserving channels, a master relation shows that entanglement loss results from the competition between coherence suppression and partial-transpose spectral shifts. Phase damping yields without finite-noise sudden death; global depolarization gives coherence-dependent sudden death; amplitude damping adds an excited-population penalty and sudden death only for ; while local depolarization is most destructive at equal depolarizing strength. The initial survival slopes, , , , and , act as compact noise fingerprints. Since concurrence satisfies for the generated states, all robustness rankings remain unchanged. Mapping channel parameters to , , and average gate fidelity connects the theory to hardware-level performance.

13 pages, 6 figures