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Published on: April 14, 2020
Thiacalix[4]arene-capped Ln(III) aggregates with "hand in hand" structures and their luminescence properties
Hongbo Gao1,2, Hao Wang3, Chenxing Liu2
1Faculty of Materials Metallurgy and Chemistry, Jiangxi University of Science and Technology, Ganzhou, Jiangxi 341000, China. wpliao@ciac.ac.cn.
Abstract:
Two isostructural thiacalix[4]arene-capped Ln8 aggregates with a "hand in hand" structure, denoted as {Ln8(μ4-OH)2Cl2(TC4A)4(BCT)2(DMF)6--(CH3OH)2+(H2O)2}·mCH3OH·nDMF (Ln = Tb (1), Eu (2); H4TC4A = p-tert-butylthiacalix[4]arene; H2BCT = 3,5-bis(4'-carboxy-phenyl)-1,2,4-triazole; DMF = N,N'-dimethylformamide), were constructed from two sandwich-like Ln4-(TC4A)2 entities bridged via two BCT2- linkers. These aggregates present a layer-like structure on the ac plane, with poly-nuclear secondary building units (PSBUs) staggered and assembled in three-dimensional space. 1 exhibits green photoluminescence under 379 nm excitation, with an average decay time of approximately 1.15 ms. Notably, the metal-centered luminescence of 1 remains nearly stable even after replacing the DMF molecules with methanol. The structural stability of 1 in various solvents, along with its excellent photoluminescence properties after being immersed in water for several months, suggests that it could effectively resist luminescence quenching. This makes it a promising candidate for applications in anti-counterfeiting and luminescence detection. In contrast, 2 does not show visible luminescence under the irradiation of a portable ultraviolet lamp (λ = 326 nm), which could be attributed to the slight difference in ligand-based energy levels. Collectively, these findings enhance the understanding of the structural diversity and application scenarios of thiacalix[4]arene-capped Ln(III) aggregates.
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