Twisted Rényi negativity as a reliable proxy for mixed-state entanglement in fermionic systems

Characterizing mixed-state entanglement in fermionic quantum matter represents a fundamental challenge at the intersection of condensed matter physics and quantum information. Unlike pure states, mixed states lack a universally accepted and easily computable entanglement measure, a difficulty compounded in fermionic systems by the ambiguity of the partial transpose operation. Here, motivated by the Hermiticity of the partially transposed density matrix and the analytic continuation of the Rényi negativity to logarithmic negativity, we address this puzzle by demonstrating the “twisted” Rényi negativity as a physically consistent proxy for mixed-state entanglement in the Hubbard and spinless t - V models. Through large-scale quantum Monte Carlo simulations of these paradigmatic correlated systems, we show that this indicator captures essential physical expectations—including the area law and monotonic thermal suppression—while excluding anomalous behavior present in alternative definitions. Our findings not only provide a robust theoretical framework for quantifying entanglement in strongly correlated electronic systems but also offer a practical tool for experimental detection in rapidly developing platforms, including ultracold atomic gases and programmable quantum simulators.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-29
DOI
https://doi.org/10.1073/pnas.2534602123
Primary Topic
Quantum many-body systems
Type
article
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article

Twisted Rényi negativity as a reliable proxy for mixed-state entanglement in fermionic systems

Xiao Yan Xu, Fo-Hong Wang
Proceedings of the National Academy of Sciences
Quantum many-body systems
article

Twisted Rényi negativity as a reliable proxy for mixed-state entanglement in fermionic systems

Xiao Yan Xu, Fo-Hong Wang
article en

Abstract

Characterizing mixed-state entanglement in fermionic quantum matter represents a fundamental challenge at the intersection of condensed matter physics and quantum information. Unlike pure states, mixed states lack a universally accepted and easily computable entanglement measure, a difficulty compounded in fermionic systems by the ambiguity of the partial transpose operation. Here, motivated by the Hermiticity of the partially transposed density matrix and the analytic continuation of the Rényi negativity to logarithmic negativity, we address this puzzle by demonstrating the “twisted” Rényi negativity as a physically consistent proxy for mixed-state entanglement in the Hubbard and spinless t - V models. Through large-scale quantum Monte Carlo simulations of these paradigmatic correlated systems, we show that this indicator captures essential physical expectations—including the area law and monotonic thermal suppression—while excluding anomalous behavior present in alternative definitions. Our findings not only provide a robust theoretical framework for quantifying entanglement in strongly correlated electronic systems but also offer a practical tool for experimental detection in rapidly developing platforms, including ultracold atomic gases and programmable quantum simulators.

Proceedings of the National Academy of SciencesVol. 123(40)
Peace, Justice and strong institutions
Openalex Percentile: Top 14%
Quantum many-body systems
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Twisted Rényi negativity as a reliable proxy for mixed-state entanglement in fermionic systems — Xiao Yan Xu, Fo-Hong Wang · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS