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◆ ACS Omega2026-04-16· Luminescence

Engineering the Thermometric Response of Dinuclear Eu <sup>III</sup> Complexes via Terminal Ligand-Induced Nonradiative Processes

Ariane C. F. Beltrame, Rodolpho A. N. Silva, Sergio A. M. Lima, Luciano Marchiò, Matteo Melegari, Flavia Artizzu, Airton G. Bispo-Jr, Ana M. Pires

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Luminescent temperature probes are powerful tools for monitoring various physical and chemical processes. Eu III complexes are particularly attractive due to their bright luminescence and temperature sensitivity of the 5 D 0 excited-level lifetime. Since this thermal response is linked to nonradiative deactivation pathways, controlling these processes is key to tune thermometric behavior. Herein, we investigate how different terminal ligands modulate nonradiative deactivation and, consequently, the thermal luminescence response of dinuclear Eu III complexes. As proof-of-concept, 1,3-diphenyl-1,3-propanedionate (dbm – ) or 4,4,4-trifluoro-1-phenyl-1,3-butanedionate (btfa – ) were employed as terminal ligands and 2,2′-bipyrimidine (bpm) as the bridge ligand to synthesize [Eu 2 (bpm)(dbm) 6 ] ( 1 ) and [Eu 2 (bpm)(btfa) 6 ] ( 2 ) complexes. The nature of the β-diketone impacts the crystal system, coordination geometry, and electronic structure. 1 presents coordination polyhedra described by a distorted D 2d point group while 2 displays a distorted D 4d coordination environment with more packed structure due to prominent F···F and H-bonding interactions. Both complexes present bright luminescence upon ultraviolet excitation, assigned to Eu III 5 D 0 → 7 F 0–4 transitions. However, the greater number of C–H bonds in dbm – and less compact structure in 1 promote faster nonradiative decay and a lower activation energy for thermal quenching of luminescence. The terminal ligand also influences the S 1 and T 1 state energies and thus the intermolecular energy transfer as well as back energy transfer (BET) processes. Consequently, the thermometric performance using the 5 D 0 excited-level lifetime as the thermometric parameter is tuned by nonradiative contributions induced by the terminal ligand: 1 operates between 270 and 420 K, while 2 works from 300 to 440 K, with maximum relative sensitivities of 3.4% K –1 (370 K) and 3.6% K –1 (410 K), respectively. These findings demonstrate how ligand scaffolds enable fine-tuning of structure–property relationships for temperature-responsive luminescent materials.
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