Intertwined Orders in a Quantum-Entangled Metal
Abstract
Entanglement underpins quantum information processing and computing, yet its experimental quantification in complex, many-body condensed matter systems remains a considerable challenge. Here, we reveal a highly entangled electronic phase proximate to a quantum metal-insulator transition, identified by resonant inelastic x-ray scattering interferometry. This approach reveals that entanglement across atomic sites generates characteristic interference patterns, which our model accurately reproduces, enabling extraction of a full entanglement spectrum and resolution of the underlying quantum states. Our analysis of the pyrochlore iridate Nd2Ir2O7 demonstrates that the system undergoes pronounced quantum fluctuations in its spin, orbital and charge degrees of freedom, even in the presence of a long-range 'all-in-all-out' antiferromagnetic order. Importantly, the observed entanglement signatures facilitate the coexistence of multiple exotic symmetry-breaking orders. Complementary investigations using Raman spectroscopy corroborate the presence of these hidden orders and their emergent excitations. In particular, we observe a two-magnon-bound state below the lowest single-magnon excitation energy, which, together with split phonon modes, provides strong evidence for cubic symmetry-breaking orders of magnetic origin juxtaposed with the all-in-all-out order. Our work thus establishes a direct link between quantum entanglement and emergent unconventional orders, opening new avenues for investigating quantum materials.
Cite
@article{arxiv.2507.04375,
title = {Intertwined Orders in a Quantum-Entangled Metal},
author = {Junyoung Kwon and Jaehwon Kim and Gwansuk Oh and Seyoung Jin and Kwangrae Kim and Hoon Kim and Seunghyeok Ha and Hyun-Woo J. Kim and GiBaik Sim and Bjorn Wehinger and Gaston Garbarino and Nour Maraytta and Michael Merz and Matthieu Le Tacon and Christoph J. Sahle and Alessandro Longo and Jungho Kim and Ara Go and Gil Young Cho and Beom Hyun Kim and B. J. Kim},
journal= {arXiv preprint arXiv:2507.04375},
year = {2025}
}