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基于银-硫属元素配位的金属有机骨架的超灵敏双功能荧光开关。

Hypersensitive dual-function luminescence switching of a silver-chalcogenolate cluster-based metal-organic framework.

机构信息

College of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, China.

Department of Chemistry and Center of Novel Functional Molecules, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong SAR. China.

出版信息

Nat Chem. 2017 Jul;9(7):689-697. doi: 10.1038/nchem.2718. Epub 2017 Feb 13.

Abstract

Silver(i) chalcogenide/chalcogenolate clusters are promising photofunctional materials for sensing, optoelectronics and solar energy harvesting applications. However, their instability and poor room-temperature luminescent quantum yields have hampered more extensive study. Here, we graft such clusters to adaptable bridging ligands, enabling their interconnection and the formation of rigid metal-organic frameworks. By controlling the spatial separation and orientation of the clusters, they then exhibit enhanced stability (over one year) and quantum yield (12.1%). Ultrafast dual-function fluorescence switching (<1 s) is also achieved, with turn-off triggered by O and multicoloured turn-on by volatile organic compounds. Single-crystal X-ray diffraction of the inclusion materials, obtained by single-crystal-to-single-crystal transformation, enables precise determination of the position of the small molecules within the framework, elucidating the switching mechanism. The work enriches the cluster-based metal-organic framework portfolio, bridges the gap between silver chalcogenide/chalcogenolate clusters and metal-organic frameworks, and provides a foundation for further development of functional silver-cluster-based materials.

摘要

银(I)硫属元素/硫属元素簇合物是一种很有前途的光功能材料,可用于传感、光电和太阳能收集应用。然而,其不稳定性和低室温下的发光量子产率限制了其更广泛的研究。在这里,我们将这些簇接枝到可适应的桥联配体上,从而实现其相互连接和刚性金属有机骨架的形成。通过控制簇的空间分离和取向,它们表现出增强的稳定性(超过一年)和量子产率(12.1%)。还实现了超快双功能荧光开关(<1s),通过 O 的关闭和挥发性有机化合物的多色开启来触发。通过单晶到单晶的转变获得的包含材料的单晶 X 射线衍射,可以精确确定小分子在骨架中的位置,阐明开关机制。这项工作丰富了基于簇的金属有机骨架产品组合,弥合了银硫属元素/硫属元素簇合物和金属有机骨架之间的差距,为进一步开发基于功能银簇的材料奠定了基础。

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