4.8 Article

Manipulating polariton condensates by Rashba-Dresselhaus coupling at room temperature

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-31529-4

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资金

  1. National Natural Science Foundation of China [11874278, 12174285]
  2. Deutsche Forschungsgemeinschaft (DFG) [231447078]
  3. Heisenberg program [270619725]
  4. [467358803]

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This study controls exciton polariton condensates using Rashba-Dresselhaus (RD) spin-orbit coupling. By utilizing CsPbBr3 perovskite microplates as the gain material in a liquid-crystal filled microcavity, an artificial gauge field acting on the CsPbBr3 exciton polariton condensate is achieved, splitting the condensate fractions with opposite spins in both momentum and real space.
Spin-orbit coupling plays an important role in the spin Hall effect and topological insulators. Bose-Einstein condensates with spin-orbit coupling show remarkable quantum phase transition. In this work we control an exciton polariton condensate - a macroscopically coherent state of hybrid light and matter excitations - by virtue of the Rashba-Dresselhaus (RD) spin-orbit coupling. This is achieved in a liquid-crystal filled microcavity where CsPbBr3 perovskite microplates act as the gain material at room temperature. Specifically, we realize an artificial gauge field acting on the CsPbBr3 exciton polariton condensate, splitting the condensate fractions with opposite spins in both momentum and real space. Besides the ground states, higher-order discrete polariton modes can also be split by the RD effect. Our work paves the way to manipulate exciton polariton condensates with a synthetic gauge field based on the RD spin-orbit coupling at room temperature. Engineered spin-orbit coupling can induce novel quantum phases in a Bose-Einstein condensate, however such demonstrations have been limited to cold atom systems. Here the authors realize a exciton-polarion condensate with tunable spin-orbit coupling in a liquid crystal microcavity at room temperature.

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