Coherent optical spectroscopy such as four-wave mixing and photon echo generation deliver rich information on the energy levels involved in optical transitions through the analysis of polarization of the coherent response. In semiconductors, it can be applied to distinguish between different exciton complexes, which is a highly non-trivial problem in optical spectroscopy. We develop a simple approach based on photon echo polarimetry, in which polar plots of the photon echo amplitude are measured as function of the angle phi between the linear polarizations of the two exciting pulses. The rosette-like polar plots reveal a distinct difference between the neutral and charged exciton (trion) optical transitions in semiconductor nanostructures. We demonstrate this experimentally by photon echo polarimetry of a CdTe/(Cd, Mg)Te quantum well. The echoes of the trion and donor-bound exciton are linearly polarized at the angle 2 phi with respect to the first pulse polarization and their amplitudes are weakly dependent on phi. While on the exciton the photon echo is co-polarized with the second exciting pulse and its amplitude scales as cos phi.

Translated title of the contributionПоляриметрия фотонного эха на заряженных и нейтральных экситонах в CdTe/(Cd,Mg)Te квантовых ямах
Original languageEnglish
Article number5666
Pages (from-to)5666
Number of pages9
JournalScientific Reports
Volume9
Issue number1
DOIs
StatePublished - 5 Apr 2019

    Research areas

  • COHERENT, DYNAMICS, EXCITATION, LOCALIZED EXCITONS, POLARIZATION DEPENDENCE, STATE, TRANSITION, TRION

    Scopus subject areas

  • General

ID: 40725247