4.8 Article

Room Temperature Coherently Coupled Exciton-Polaritons in Two-Dimensional-Organic Inorganic Perovskite

期刊

ACS NANO
卷 12, 期 8, 页码 8382-8389

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b03737

关键词

two-dimensional perovskite; exciton polariton; light matter strong coupling; Fabry-Perot cavity; Bragg mode

资金

  1. National Key R&D Program of China [2018YFA0306304]
  2. National Natural Science Foundation of China [11674069]
  3. Program of Shanghai Subject Chief Scientist [14XD1400200]
  4. Singapore National Research Foundation through the NRF Investigatorship Award [NRF-NRFI2015-03]
  5. Singapore National Research Foundation through the Competitive Research Programme [NRF-CRP14-2014-03]
  6. Singapore Ministry of Education [MOE2015-T2-1-047, MOE2017-T2-1-040, RG 103/15, RG 113/16, RG 194/17]
  7. China Scholarship Council [201706100056]
  8. Singapore Ministry of Education via the AcRF Tier 2 grant [MOE2017-T2-001]

向作者/读者索取更多资源

Two-dimensional (2D) organic inorganic perovskite semiconductors with natural multiquantum well structures and confined 2D excitons are intriguing for the study of strong exciton photon coupling, due to their large exciton binding energy and oscillation strength. This strong coupling leads to a formation of the half-light half-matter bosonic quasiparticle called exciton polariton, consisting of a linear superposition state between photonic and excitonic states. Here, we demonstrate room temperature strong coupling in exfoliated wavelength-tunable 2D organic inorganic perovskite semiconductors embedded into a planar microcavity, exhibiting large energetic splitting-to-line width ratios (>34.2). Angular dependent spectroscopy measurements reveal that hybridized polariton states act as an ultrafast and reversible energy oscillation, involving 2D perovskite exciton, cavity modes (CM), and Bragg modes of the distributed Bragg reflector. Meanwhile, sizable hybrid particles dominantly couple to the measured optical field through the CMs. Our findings advocate a considerable promise of 2D organic inorganic perovskite to explore fundamental quantum phenomena such as Bose Einstein condensation, superfluidity, and exciton polariton networks.

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