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首页> 外文期刊>Inorganic Chemistry Frontiers >Intramolecular rearrangements guided by adaptive coordination-driven reactions toward highly luminescent polynuclear Cu(I) assemblies
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Intramolecular rearrangements guided by adaptive coordination-driven reactions toward highly luminescent polynuclear Cu(I) assemblies

机译:通过对高发光多核Cu(I)组件的适应性协调驱动的反应引导的分子内重排

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摘要

Adaptive coordination-driven supramolecular chemistry based on conformationally flexible pre-organized luminescent Cu(I) precursors paves the way to the ready formation of an intricate supramolecular scaffold possessing intrinsic luminescence properties. A formal ring extension of a tetrametallic Cu(I) metallacycle bearing Thermally Activated Delayed Fluorescence (TADF) properties can thus be carried out, affording a new hexametallic Cu(I) metallacycle 1 bearing modulated solid-state TADF properties. Attempts to adapt this ring extension process to the formation of targeted heterometallic Au2Cu4 and Pt2Cu8 assemblies led to the unexpected and ready formation of the Au2Cu10 and Pt4Cu11 derivatives 2 and 3, respectively. These outcomes strengthen the scope and perspectives of adaptive coordination-driven supramolecular chemistry compared to those of conventional coordination-driven supramolecular chemistry. Indeed, it guides concerted intramolecular fragmentation and redistribution of the particular building blocks used, affording selectively supramolecular scaffolds of higher nuclearity and complexity. The study of the solid-state photophysical properties of the assemblies 2 and 3 highlights enhanced and original behaviors, in which the heavy metal spin-orbit coupling values significantly influence the relaxation processes centered on the Cu(I) metal centers.
机译:基于构象柔性的预组织的发光Cu(I)前体的自适应协调驱动的超分子化学铺平了具有特性发光性质的复杂超分子支架的准备好形成的方式。因此,可以进行四甘石Cu(I)金属核(I)金属核(TADF)性能的正式环延伸,因此可以进行新的六偏金属Cu(I)金属核糖1轴承调节的固态TADF性能。尝试将该环扩展过程调整为形成目标异常AU2CU4和PT2CU8组件的形成,其分别意外和准备地形成AU2CU10和PT4CU11衍生物2和3。与常规协调驱动的超分子化学相比,这些结果加强了适应性协调驱动的超分子化学的范围和观点。实际上,它引导了齐齐经义的分子内碎片和再分分配所用的特定构建块,提供了更高的核性和复杂性的选择性超分子支架。对组件2和3的固态光学性质的研究突出了增强的和原始行为,其中重金属旋转轨道耦合值显着影响了在Cu(I)金属中心上的放松过程。

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