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January 25, 2026Nature Communications3 citationsOpen Access

Phonon-driven wavefunction localization enhances room-temperature single-photon purity in large hybrid lead halide perovskite quantum dots

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LFLeon G. FeldSBSimon C. BoehmeSSSebastian Sabisch

Key Points

  • To explore how different A-site cations in lead halide perovskites affect exciton wavefunction localization and single-photon emission.
  • Conducted ab-initio molecular-dynamics simulations
  • Performed single-particle fluorescence spectroscopy
  • Analyzed the influence of anharmonic crystal vibrations on exciton confinement
  • Achieved bright single-photon emission at 10^6 photons/s
  • Obtained single-photon purity over 95%
  • Demonstrated stable emission exceeding 1 hour
  • Highlighted tunable emission across 495-745 nm range

Abstract

Abstract In lead halide perovskites (APbX 3 ), the effect of the A-site cation on optical and electronic properties has initially been thought to be marginal. Yet, evidence of beneficial effects on solar-cell performance and light emission is accumulating. Here, we report that the A-site cation in soft APbBr 3 colloidal quantum dots (QDs) controls the phonon-induced localization of the exciton wavefunction. Insights from ab-initio molecular-dynamics simulations and single-particle fluorescence spectroscopy demonstrate that anharmonic crystal vibrations and the resulting disorder act as an additional confinement potential. Avoiding the trade-off between single-photon purity and optical stability faced by downsizing conventional QDs into the strong confinement regime, dynamical phonon-induced confinement in large organic-inorganic perovskite QDs enables bright (10 6 photons/s), stable ( > 1 h), and pure (> 95%) single-photon emission tunable across a wide spectral range (495-745 nm). Strong electron-phonon interaction in soft perovskite QDs provides an unconventional route toward developing scalable room-temperature quantum-light sources.

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Cite This Study

Feld et al. (2026) studied this question.

synapsesocial.com/papers/6975b306feba4585c2d6e873https://doi.org/10.1038/s41467-026-68607-w
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