TY - UNPB
T1 - Observation of a non-Hermitian phase transition in an optical quantum gas
AU - Öztürk, Fahri Emre
AU - Lappe, Tim
AU - Hellmann, Göran
AU - Schmitt, Julian
AU - Klaers, Jan
AU - Vewinger, Frank
AU - Kroha, Johann
AU - Weitz, Martin
N1 - 10 pages, 4 figures, (additional 22 pages for supplementary information)
PY - 2020/10/29
Y1 - 2020/10/29
N2 - Quantum gases of light, as photons or polariton condensates in optical microcavities, are collective quantum systems enabling a tailoring of dissipation from e.g. cavity loss. This makes them a tool to study dissipative phases, an emerging subject in quantum manybody physics. Here we experimentally demonstrate a non-Hermitian phase transition of a photon Bose-Einstein condensate to a new dissipative phase, characterized by a biexponential decay of the condensate's second-order coherence. The phase transition occurs due to the emergence of an exceptional point in the quantum gas. While Bose-Einstein condensation is usually connected to ordinary lasing by a smooth crossover, the observed phase transition separates the novel, biexponential phase from both lasing and an intermediate, oscillatory condensate regime. Our findings pave the way for studies of a wide class of dissipative quantum phases, for instance in topological or lattice systems.
AB - Quantum gases of light, as photons or polariton condensates in optical microcavities, are collective quantum systems enabling a tailoring of dissipation from e.g. cavity loss. This makes them a tool to study dissipative phases, an emerging subject in quantum manybody physics. Here we experimentally demonstrate a non-Hermitian phase transition of a photon Bose-Einstein condensate to a new dissipative phase, characterized by a biexponential decay of the condensate's second-order coherence. The phase transition occurs due to the emergence of an exceptional point in the quantum gas. While Bose-Einstein condensation is usually connected to ordinary lasing by a smooth crossover, the observed phase transition separates the novel, biexponential phase from both lasing and an intermediate, oscillatory condensate regime. Our findings pave the way for studies of a wide class of dissipative quantum phases, for instance in topological or lattice systems.
U2 - 10.48550/arXiv.2010.15829
DO - 10.48550/arXiv.2010.15829
M3 - Preprint
BT - Observation of a non-Hermitian phase transition in an optical quantum gas
PB - ArXiv.org
ER -