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April 26, 2026The Journal of Chemical Physics1 citations

Photoluminescence line shapes of nanocrystals: Contributions from first- and second-order vibronic couplings

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KPKaiyue PengBHBokang HouKLKailai Lin

Key Points

  • To compute and analyze the photoluminescence spectra of semiconductor nanocrystals through exciton-phonon interactions.
  • Develop a microscopic method for calculating photoluminescence spectra without parameters.
  • Incorporate both diagonal and off-diagonal exciton-phonon interactions expanded to second-order in phonon coordinates.
  • Calculate dipole-dipole correlation using Dyson expansion in the Kubo-Toyozawa formalism.
  • Quadratic phonon couplings explain nearly half of the homogeneous linewidth above 100-150 K.
  • Off-diagonal couplings for exciton thermalization have a minimal impact only as temperature approaches 300 K.

Abstract

We present a microscopic, parameter-free approach for computing the photoluminescence spectra of a single semiconductor nanocrystal. The method derives exciton-phonon coupling directly from the semi-empirical pseudopotential framework and systematically incorporates both diagonal and off-diagonal exciton-phonon interactions, expanded to second-order in the phonon coordinates. The dipole-dipole correlation function was calculated using a Dyson expansion within the Kubo-Toyozawa formalism, enabling a consistent description of the role of pure dephasing and population transfer on the photoluminescence spectral features. Applied to CdSe/CdS core-shell nanocrystals, the approach quantitatively reproduces experimental photoluminescence spectra over a wide temperature range, revealing that quadratic phonon couplings account for nearly half of the homogeneous linewidth above ≈100-150 K, while off-diagonal couplings leading to exciton thermalization play only a minor role and only as T → 300 K.

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Cite This Study

Peng et al. (2026) studied this question.

synapsesocial.com/papers/69edadba4a46254e215b554ehttps://doi.org/10.1063/5.0331802
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