Lanthanide-Enabled Lattice Engineering of Copper(I) Cluster Scintillators

Abstract Copper(I) clusters are attractive scintillators, yet their intrinsic dual-band emission from competing metal/halide-to-ligand charge-transfer (3MXLCT) and cluster-centered (3CC) states partitions excitation energy between distinct emissive pathways. Here, we report a molecular lattice-engineering strategy that regulates this excited-state competition through trivalent lanthanide (Ln3+) incorporation. Heterometallic Cu–Ln coordination networks constrain ligand relaxation, thereby suppressing 3MXLCT emission while preserving cluster-centered emission to produce single-band scintillation. Systematic comparison of (NHIC)6(DMF)2Ln2Cu4I4 (Cu–Ln–NHIC; Ln = La, Eu, Gd, Ho, Lu) reveals that efficient 3CC emission depends on both the local coordination environment surrounding the Cu4I4 cluster and the electronic structure of the Ln3+ ion. La3+ provides a relatively less confined Cu4I4 environment, while its 4f0 configuration avoids competing lanthanide-centered excited states, resulting in a photoluminescence quantum yield of 90% and a scintillation light yield of 16,015 photons MeV–1, corresponding to a 117-fold enhancement in radioluminescence intensity relative to Cu-NHIC. Cu–La–NHIC further achieves an X-ray detection limit of 12.5 nGy s–1 and a spatial resolution of 22.3 lp mm–1. These results establish lattice regulation of competing excited-state pathways as a molecular design principle for single-band, efficient Cu(I)-cluster scintillation.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-17
DOI
https://doi.org/10.1021/jacs.6c11739
Primary Topic
Magnetism in coordination complexes
Type
article
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article

Lanthanide-Enabled Lattice Engineering of Copper(I) Cluster Scintillators

Qiushui Chen, Sanyang Han, Xian Qin, Zhen Mu et al.
Journal of the American Chemical Society
Magnetism in coordination complexes
article

Lanthanide-Enabled Lattice Engineering of Copper(I) Cluster Scintillators

Qiushui Chen, Sanyang Han, Xian Qin, Zhen Mu, Zhiqiang Hu, Xiaogang Liu, Jian Qiu, Chang Gu, Hao Jiang
article en

Abstract

Abstract Copper(I) clusters are attractive scintillators, yet their intrinsic dual-band emission from competing metal/halide-to-ligand charge-transfer (3MXLCT) and cluster-centered (3CC) states partitions excitation energy between distinct emissive pathways. Here, we report a molecular lattice-engineering strategy that regulates this excited-state competition through trivalent lanthanide (Ln3+) incorporation. Heterometallic Cu–Ln coordination networks constrain ligand relaxation, thereby suppressing 3MXLCT emission while preserving cluster-centered emission to produce single-band scintillation. Systematic comparison of (NHIC)6(DMF)2Ln2Cu4I4 (Cu–Ln–NHIC; Ln = La, Eu, Gd, Ho, Lu) reveals that efficient 3CC emission depends on both the local coordination environment surrounding the Cu4I4 cluster and the electronic structure of the Ln3+ ion. La3+ provides a relatively less confined Cu4I4 environment, while its 4f0 configuration avoids competing lanthanide-centered excited states, resulting in a photoluminescence quantum yield of 90% and a scintillation light yield of 16,015 photons MeV–1, corresponding to a 117-fold enhancement in radioluminescence intensity relative to Cu-NHIC. Cu–La–NHIC further achieves an X-ray detection limit of 12.5 nGy s–1 and a spatial resolution of 22.3 lp mm–1. These results establish lattice regulation of competing excited-state pathways as a molecular design principle for single-band, efficient Cu(I)-cluster scintillation.

Journal of the American Chemical Society
Fujian Normal University (CN), National University of Singapore (SG), Fuzhou University (CN), Tsinghua University (CN)
Openalex Percentile: Top 28%
Magnetism in coordination complexes
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