4.8 Article

Valley-addressable polaritons in atomically thin semiconductors

Journal

NATURE PHOTONICS
Volume 11, Issue 8, Pages 497-+

Publisher

NATURE RESEARCH
DOI: 10.1038/NPHOTON.2017.125

Keywords

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Funding

  1. Graphene Flagship [696656]
  2. Engineering and Physical Sciences Research Council (EPSRC) [EP/M012727/1, EP/J007544/1]
  3. European Research Council (ERC) Advanced Grant EXCIPOL [320570]
  4. Marie Sklodowska-Curie network Spin-NANO [676108]
  5. Leverhulme Trust
  6. Royal Academy of Engineering
  7. Royal Society
  8. EPSRC
  9. US Army Research Office
  10. ERC Grant Hetero2D
  11. EPSRC [EP/N031776/1, EP/J007544/1, EP/N010345/1, EP/M012727/1] Funding Source: UKRI
  12. Engineering and Physical Sciences Research Council [EP/N010345/1, EP/N031776/1, 1647813, EP/J007544/1] Funding Source: researchfish
  13. European Research Council (ERC) [320570] Funding Source: European Research Council (ERC)

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The locking of the electron spin to the valley degree of freedom in transition metal dichalcogenide (TMD) monolayers has seen these materials emerge as a promising platform in valleytronics(1,2). When embedded in optical microcavities, the large oscillator strengths of excitonic transitions in TMDs allow the formation of polaritons that are part-light part-matter quasiparticles(3-7). Here, we report that polaritons in MoSe2 show an efficient retention of the valley pseudospin contrasting them with excitons and trions in this material. We find that the degree of the valley pseudospin retention is dependent on the photon, exciton and trion fractions in the polariton states. This allows us to conclude that in the polaritonic regime, cavity-modified exciton relaxation inhibits loss of the valley pseudospin. The valley-addressable exciton-polaritons and trion-polaritons presented here offer robust valley-polarized states with the potential for valleytronic devices based on TMDs embedded in photonic structures and valley-dependent nonlinear polariton-polariton interactions.

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