Abstract
AbstractQuantum fluids exhibit quantum mechanical effects at the macroscopic level, which contrast strongly with classical fluids. Gain-dissipative solid-state exciton-polaritons systems are promising emulation platforms for complex quantum fluid studies at elevated temperatures. Recently, halide perovskite polariton systems have emerged as materials with distinctive advantages over other room-temperature systems for future studies of topological physics, non-Abelian gauge fields, and spin-orbit interactions. However, the demonstration of nonlinear quantum hydrodynamics, such as superfluidity and Čerenkov flow, which is a consequence of the renormalized elementary excitation spectrum, remains elusive in halide perovskites. Here, using homogenous halide perovskites single crystals, we report, in both one- and two-dimensional cases, the complete set of quantum fluid phase transitions from normal classical fluids to scatterless polariton superfluids and supersonic fluids—all at room temperature, clear consequences of the Landau criterion. Specifically, the supersonic Čerenkov wave pattern was observed at room temperature. The experimental results are also in quantitative agreement with theoretical predictions from the dissipative Gross-Pitaevskii equation. Our results set the stage for exploring the rich non-equilibrium quantum fluid many-body physics at room temperature and also pave the way for important polaritonic device applications.
Funder
United States Department of Defense | United States Navy | Office of Naval Research
Nebraska Public Power District through the Nebraska Center for Energy Sciences Research
Gordon and Betty Moore Foundation
Ernest S. Kuh Endowed Chair Professorship
Canada Research Chairs
United States Department of Defense | United States Army | U.S. Army Research, Development and Engineering Command | Army Research Office
U.S. Department of Energy
National Science Foundation
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
Reference60 articles.
1. Leggett, A. J. Quantum Liquids: Bose Condensation and Cooper Pairing in Condensed-Matter Systems (Oxford University Press, 2008).
2. Halperin, W. P. Eighty years of superfluidity. Nature 553, 413–414 (2018).
3. Gross, C. & Bloch, I. Quantum simulations with ultracold atoms in optical lattices. Science 357, 995–1001 (2017).
4. Pines, D. & Alpar, M. A. Superfluidity in neutron stars. Nature 316, 27–32 (1985).
5. Ho, T. L. Spinor bose condensates in optical traps. Phys. Rev. Lett. 81, 742–745 (1998).
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