TY - JOUR
T1 - Time-hidden magnetic order in a multi-orbital Mott insulator
AU - Li, Xinwei
AU - Esin, Iliya
AU - Han, Youngjoon
AU - Liu, Yincheng
AU - Zhao, Hengdi
AU - Ning, Honglie
AU - Barrett, Cora
AU - Shan, Jun Yi
AU - Seyler, Kyle
AU - Cao, Gang
AU - Refael, Gil
AU - Hsieh, David
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Limited 2025.
PY - 2025/1/23
Y1 - 2025/1/23
N2 - Photo-excited quantum materials can be driven into thermally inaccessible metastable states that exhibit structural, charge, spin, topological and superconducting orders. Metastable states typically emerge on timescales set by the intrinsic electronic and phononic energy scales, ranging from femtoseconds to picoseconds, and can persist for weeks. Therefore, studies have primarily focused on ultrafast or quasi-static limits, leaving the intermediate time window less explored. Here we reveal a metastable state with broken glide-plane symmetry in photo-doped Ca2RuO4 using time-resolved optical second-harmonic generation and birefringence measurements. We find that the metastable state appears long after intralayer antiferromagnetic order has melted and photo-carriers have recombined. Its properties are distinct from all known states in the equilibrium phase diagram and are consistent with intralayer ferromagnetic order. Furthermore, model Hamiltonian calculations reveal that a non-thermal trajectory to this state can be accessed via photo-doping. Our results expand the search space for out-of-equilibrium electronic matter to metastable states emerging at intermediate timescales.
AB - Photo-excited quantum materials can be driven into thermally inaccessible metastable states that exhibit structural, charge, spin, topological and superconducting orders. Metastable states typically emerge on timescales set by the intrinsic electronic and phononic energy scales, ranging from femtoseconds to picoseconds, and can persist for weeks. Therefore, studies have primarily focused on ultrafast or quasi-static limits, leaving the intermediate time window less explored. Here we reveal a metastable state with broken glide-plane symmetry in photo-doped Ca2RuO4 using time-resolved optical second-harmonic generation and birefringence measurements. We find that the metastable state appears long after intralayer antiferromagnetic order has melted and photo-carriers have recombined. Its properties are distinct from all known states in the equilibrium phase diagram and are consistent with intralayer ferromagnetic order. Furthermore, model Hamiltonian calculations reveal that a non-thermal trajectory to this state can be accessed via photo-doping. Our results expand the search space for out-of-equilibrium electronic matter to metastable states emerging at intermediate timescales.
UR - http://www.scopus.com/inward/record.url?scp=85216464532&partnerID=8YFLogxK
U2 - 10.1038/s41567-024-02752-1
DO - 10.1038/s41567-024-02752-1
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AN - SCOPUS:85216464532
SN - 1745-2473
VL - 21
SP - 451
EP - 457
JO - Nature Physics
JF - Nature Physics
IS - 3
M1 - 8258
ER -