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Connecting Density Matrix Spectroscopy to Biexciton Entanglement Dynamics

Quantum Physics 2026-06-29 v1 Mesoscale and Nanoscale Physics Strongly Correlated Electrons Optics

Abstract

Quantum entanglement is one of the most intriguing features of quantum mechanics. To investigate the entanglement between two excitons in a biexciton, an experimental technique called density matrix spectroscopy (DMS) has recently been developed. DMS combines stimulated emission tomography and pump-probe techniques to obtain a time-resolved density matrix of the polarization state of a photon pair emitted from the biexciton. The reconstructed density matrix is expected to encode information about the biexciton state and its entanglement dynamics, but the precise nature of this connection has remained unclear. In this paper, we derive an analytical relationship between the density matrix obtained by DMS and the biexciton state. In addition, we perform numerical simulations to compare the entanglement dynamics obtained by DMS with the biexciton's entanglement dynamics in a two-dimensional electron-hole system using an extended ionic Hubbard model. We find that DMS can partially capture the entanglement in the biexciton, in particular, the dynamics of the difference SbiSkS_{\mathrm{bi}} - S_k, where SbiS_{\mathrm{bi}} is the entanglement entropy of the biexciton and SkS_k is the entanglement in terms of the wavevectors of the excitons that constitute the biexciton. These results demonstrate the validity of DMS for obtaining information about the entanglement dynamics of the biexciton.

Cite

@article{arxiv.2606.30424,
  title  = {Connecting Density Matrix Spectroscopy to Biexciton Entanglement Dynamics},
  author = {Yusuke Masaki and Takashi Otaki and Hiroaki Matsueda},
  journal= {arXiv preprint arXiv:2606.30424},
  year   = {2026}
}

Comments

19 pages 10 figures

R2 v1 2026-07-22T20:15:27.933Z