4.8 Article

Nonclassical Exciton Diffusion in Monolayer WSe2

期刊

PHYSICAL REVIEW LETTERS
卷 127, 期 7, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.127.076801

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资金

  1. DFG via Emmy Noether Initiative [CH 1672/1, SFB 1277]
  2. Wurzburg-Dresden Cluster of Excellence on Complexity and Topology in Quantum Matter ct.qmat [EXC 2147, SFB 1083]
  3. European Union's Horizon 2020 research and innovation program [881603]
  4. 2D TECH VINNOVA competence Center [2019-00068]
  5. Elemental Strategy Initiative
  6. MEXT, Japan [JPMXP0112101001]
  7. JSPS KAKENHI [JP20H00354, JPMJCR15F3]
  8. JST
  9. RSF Project [19-12-00051]
  10. Russian Science Foundation [19-12-00051] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

Experimental results show a highly unusual exciton diffusion behavior in monolayer semiconductors, where the diffusion coefficient decreases significantly with increasing temperature, challenging traditional descriptions of mobile excitons. The origin of this behavior is discussed in the context of nonclassical propagation and microscopic numerical models.
We experimentally demonstrate time-resolved exciton propagation in a monolayer semiconductor at cryogenic temperatures. Monitoring phonon-assisted recombination of dark states, we find a highly unusual case of exciton diffusion. While at 5 K the diffusivity is intrinsically limited by acoustic phonon scattering, we observe a pronounced decrease of the diffusion coefficient with increasing temperature, far below the activation threshold of higher-energy phonon modes. This behavior corresponds neither to well-known regimes of semiclassical free-particle transport nor to the thermally activated hopping in systems with strong localization. Its origin is discussed in the framework of both microscopic numerical and semiphenomenological analytical models illustrating the observed characteristics of nonclassical propagation. Challenging the established description of mobile excitons in monolayer semiconductors, these results open up avenues to study quantum transport phenomena for excitonic quasiparticles in atomically thin van der Waals materials and their heterostructures.

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