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February 23, 2026Angewandte Chemie International Edition0 citations

Spin‐Orbit Coupling of Ln 3+ Induces and Modulates Thermally Activated Delayed Fluorescence in Heterometallic LnAgP 3 Clusters

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SHSheng-Rong HeXWXue‐Ting WangFLFang‐Wen Lv

Key Points

  • The study aims to understand how Ln3+ ions affect the TADF properties of Ag(I)-based materials through spin-orbit coupling.
  • Investigation of temperature-dependent emission spectra and decay lifetime measurements.
  • Analysis of energy transfer mechanisms in LnAgP3 clusters with varying Eu:Gd ratios.
  • Theoretical calculations on the electronic structure and spin-orbit coupling effects.
  • Y3+ and Gd3+ ions enhance TADF activity in [AgP3], affecting photoluminescence.
  • Optimal TADF performance was found at a Eu:Gd ratio of 0.5:0.5, with a k(S1→S0) of 1.05 × 10^7 s^-1.
  • SOC impacts the electronic structure, reducing ΔE(S1-T1) to <0.2 eV, which facilitates reverse intersystem crossing.

Abstract

The rational design of Ag(I)-based thermally activated delayed fluorescence (TADF) materials requires fundamental understanding of structure-property relationship governing their emission characteristics. In this work, coordination with Ln3+ ions endows the resulting compounds LnAgP3 (Ln = Gd/Eu/Y) with pronounced photoluminescence. Temperature-dependent emission spectra and decay lifetime measurements reveal that Y3+ and Gd3+ incorporation induces distinct TADF activity in the AgP3 moiety. In EuAgP3, combined the experimental results supports efficient energy transfer from AgP3 to Eu3+ via both singlet energy transfer (SET) and triplet energy transfer (TET) pathways. Modulating the Eu:Gd molar ratio within a lattice enables precise control over the TADF performance of the AgP3 unit. At a Eu:Gd ratio of 0.5:0.5, optimal TADF performance of the AgP3 moiety is observed with a larger k(S1→S0) value of 1.05 × 107 s-1 and a shorter TADF decay time of 6.45 µs. Theoretical calculations further reveal that the SOC of the 4f orbitals perturbs the electronic structure of AgP3, compressing ΔE(S1-T1) to 3] moiety.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/699ba05e72792ae9fd86fedfhttps://doi.org/10.1002/anie.202525030
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