Weak lasing in one-dimensional polariton superlattices

  • Long Zhang
  • , Wei Xie
  • , Jian Wang
  • , Alexander Poddubny
  • , Jian Lu
  • , Yinglei Wang
  • , Jie Gu
  • , Wenhui Liu
  • , Dan Xu
  • , Xuechu Shen
  • , Yuri G. Rubo
  • , Boris L. Altshuler
  • , Alexey V. Kavokin
  • , Zhanghai Chen*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

66 Scopus citations

Abstract

Bosons with finite lifetime exhibit condensation and lasing when their influx exceeds the lasing threshold determined by the dissipative losses. In general, different one-particle states decay differently, and the bosons are usually assumed to condense in the state with the longest lifetime. Interaction between the bosons partially neglected by such an assumption can smear the lasing threshold into a threshold domain-a stable lasing manybody state exists within certain intervals of the bosonic influxes. This recently described weak lasing regime is formed by the spontaneously symmetry breaking and phase-locking self-organization of bosonic modes, which results in an essentially manybody state with a stable balance between gains and losses. Here we report, to our knowledge, the first observation of the weak lasing phase in a one-dimensional condensate of exciton-polaritons subject to a periodic potential. Real and reciprocal space photoluminescence images demonstrate that the spatial period of the condensate is twice as large as the period of the underlying periodic potential. These experiments are realized at room temperature in a ZnO microwire deposited on a silicon grating. The period doubling takes place at a critical pumping power, whereas at a lower power polariton emission images have the same periodicity as the grating.

Original languageEnglish
Pages (from-to)E1516-E1519
JournalProceedings of the National Academy of Sciences of the United States of America
Volume112
Issue number13
DOIs
StatePublished - 31 Mar 2015
Externally publishedYes

Keywords

  • Condensate
  • Polariton
  • Superlattice
  • Symmetry breaking
  • Weak lasing

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