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Circularly Polarized Luminescence Without External Magnetic Fields from Individual CsPbBr Perovskite Quantum Dots. | LitMetric

AI Article Synopsis

  • Lead halide perovskite quantum dots (QDs) are advanced materials known for their exceptional optical qualities, which can be utilized in classical and quantum light sources due to their unique exciton properties.
  • The study reveals that these QDs can demonstrate a significant degree of circular polarization, reaching up to 38%, alongside their typical linear polarization, which is often overlooked by traditional measurement techniques.
  • The findings also highlight a shift in polarization from left- to right-hand within the exciton states under varying conditions, enhancing our understanding of the photophysical behavior of these QDs and their potential applications in chiral quantum optics.

Article Abstract

Lead halide perovskite quantum dots (QDs), the latest generation of the colloidal QD family, exhibit outstanding optical properties, which are now exploited as both classical and quantum light sources. Most of their rather exceptional properties are related to the peculiar exciton fine-structure of band-edge states, which can support unique bright triplet excitons. The degeneracy of the bright triplet excitons is lifted with energetic splitting in the order of millielectronvolts, which can be resolved by the photoluminescence (PL) measurements of single QDs at cryogenic temperatures. Each bright exciton fine-structure-state (FSS) exhibits a dominantly linear polarization, in line with several theoretical models based on the sole crystal field, exchange interaction, and shape anisotropy. Here, we show that in addition to a high degree of linear polarization, the individual exciton FSS can exhibit a non-negligible degree of circular polarization even without external magnetic fields by investigating the four Stokes parameters of the exciton fine-structure in individual CsPbBr QDs through Stokes polarimetric measurements. We observe a degree of circular polarization up to ∼38%, which could not be detected by using the conventional polarimetric technique. In addition, we found a consistent transition from left- to right-hand circular polarization within the fine-structure triplet manifold, which was observed in magnetic-field-dependent experiments. Our optical investigation provides deeper insights into the nature of the exciton fine structures and thereby drives the yet-incomplete understanding of the unique photophysical properties of this class of QDs for the benefit of future applications in chiral quantum optics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11223489PMC
http://dx.doi.org/10.1021/acsnano.4c04392DOI Listing

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