| Literature DB >> 33795457 |
Fahri Emre Öztürk1, Tim Lappe2, Göran Hellmann1, Julian Schmitt3, Jan Klaers1, Frank Vewinger1, Johann Kroha2, Martin Weitz3.
Abstract
Quantum gases of light, such as photon or polariton condensates in optical microcavities, are collective quantum systems enabling a tailoring of dissipation from, for example, cavity loss. This characteristic makes them a tool to study dissipative phases, an emerging subject in quantum many-body physics. We experimentally demonstrate a non-Hermitian phase transition of a photon Bose-Einstein condensate to a dissipative phase characterized by a biexponential decay of the condensate's second-order coherence. The phase transition occurs because of the emergence of an exceptional point in the quantum gas. Although Bose-Einstein condensation is usually connected to lasing by a smooth crossover, the observed phase transition separates the biexponential phase from both lasing and an intermediate, oscillatory condensate regime. Our approach can be used to study a wide class of dissipative quantum phases in topological or lattice systems.Entities:
Year: 2021 PMID: 33795457 DOI: 10.1126/science.abe9869
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728