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Journal of the American Chemical Society· 2026Q1

Nonthermalized Multiple Localized States Enable Efficient and Stable White-Light-Emitting Quantum Dots

Jiakuan Zhang, Peipei Jin, Boyi Xu, Jing Wang et al.

Short summary

Quantum dots (QDs) achieve efficient and stable white light emission by partitioning photogenerated holes into two distinct, nonthermalized localized states, leading to ultrabroad emission (120-130 nm fwhm) and high quantum yields (>50% electron-to-photon).

AI-generated from the title and abstract; the full text is not read.

Key points

  • Photogenerated holes are controllably partitioned into two parallel, kinetically isolated, nonthermalized localized states in AgInxGa1–xS2/ZnS core/shell QDs.
  • These dual states enable ultrabroad emission with a PL fwhm of 120–130 nm and near-unity quantum yield.
  • The QD system exhibits negligible Urbach tail and robust operation under thermal and optical stress.
  • A single QD type integrated with a blue GaN chip produces efficient warm-white light (~150 lm W–1 wall-plug efficiency, >50% electron-to-photon QY).

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Broadband emission from single quantum dot (QD) inherently relies on localized states that are conventionally regarded as nonradiative trap manifolds and suffer from low synthetic reproducibility. Here we show that photogenerated holes in a AgInxGa1–xS2/ZnS core/shell QD can be controllably partitioned into two parallel, kinetically isolated, and nonthermalized localized states, each of which then radiatively recombines with the delocalized electron with distinct formation and recombination kinetics. The high-energy and low-energy photoluminescence (PL) peaks are related to a small-polaron-like state in the core and a manifold of trap states near the core–shell boundary, respectively. The nonequilibrated dual-state architecture yields composition-tunable and ultrabroad emission with a PL full width at half maximum (fwhm) of 120–130 nm, near-unity quantum yield (QY), negligible Urbach tail, and robust operation under thermal and optical stress. Integrated with a blue GaN chip, a single type of QD produces efficient and stable warm-white light with a wall-plug efficiency as ∼150 lm W–1 and an electron-to-photon QY > 50%. Our results indicate localized states should be revisited as a valid paradigm for optoelectronic QD materials.

The authors' abstract, as published at the source. Journal of the American Chemical Society, 2026 · DOI ↗

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Field: Materials Chemistry

Materials ChemistryMaterials Science