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September 10, 2025JACS Au6 citationsOpen Access

Thick ZnS Shells on CsPbBr3 Quantum Dots by Colloidal-Atomic Layer Deposition for Enhanced Photoluminescence and Stability

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JTJustice Agbeshie TekuDTDerrick A. TaylorJLJong‐Soo Lee

Key Points

  • The formation of a thick ZnS shell significantly enhances photoluminescence quantum yield and stability.
  • Structural and spectroscopic analyses confirmed the uniform growth of the ZnS shell around the quantum dots.
  • The c-ALD method provides precise control over shell thickness, achieving conformal encapsulation of CsPbBr3.
  • Core/shell PeQDs demonstrate improved thermal, photostability, and durability compared to pristine CsPbBr3 quantum dots.

Abstract

The colloidal-atomic layer deposition (c-ALD) method is employed to grow a zinc sulfide (ZnS) shell on CsPbBr3 perovskite quantum dots (PeQDs) to form CsPbBr3/ZnS core/shell heterostructures to address the intrinsic stability challenges of PeQDs. The c-ALD process offers layer by layer control over the thickness of the shell, enabling uniform and conformal encapsulation, which significantly passivates the surface defects and enhances the optical properties of the PeQDs. This approach significantly improves photoluminescence quantum yield, increases environmental stability, and prolongs the average radiative lifetime of the CsPbBr3 PeQDs. The structural and spectroscopic analysis confirms the formation of a thick and uniform ZnS shell. Furthermore, the resulting core/shell PeQDs exhibit exceptional thermal, photostability, and aqueous durability, surpassing the limitations of pristine CsPbBr3 PeQDs. This work opens new opportunities for the c-ALD method to be integrated into perovskite core/shell heterostructures for advancing optoelectronic technologies.

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Cite This Study

Teku et al. (2025) studied this question.

synapsesocial.com/papers/68c1a90c54b1d3bfb60e2245https://doi.org/10.1021/jacsau.5c00651
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