Buckling cluster-based H-bonded icosahedral capsules and their propagation to a robust zeolite-like supramolecular framework.

Zhao, Zhan-Hua; Han, Bao-Liang; Su, Hai-Feng; Guo, Qi-Lin; Wang, Wen-Xin; Zhuo, Jing-Qiu; Guo, Yong-Nan; Liu, Jia-Long et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Hydrogen-bonded assembly of multiple components into well-defined icosahedral capsules akin to virus capsids has been elusive. In parallel, constructing robust zeolitic-like cluster-based supramolecular frameworks (CSFs) without any coordination covalent bonding linkages remains challenging. Herein, we report a cluster-based pseudoicosahedral H-bonded capsule Cu<sub>60</sub>, which is buckled by the self-organization of judiciously designed constituent copper clusters and anions. The spontaneous formation of the icosahedron in the solid state takes advantage of 48 charge-assisted CH···F hydrogen bonds between cationic clusters and anions (PF<sub>6</sub><sup>-</sup>), and is highly sensitive to the surface protective ligands on the clusters with minor structural modification inhibiting its formation. Most excitingly, an extended three-periodic robust zeolitic-like CSF, is constructed by edge-sharing the resultant icosahedrons. The perpendicular channels of the CSF feature unusual 3D orthogonal double-helical patterns. The CSF material not only keeps its single-crystal character in the desolvated phase, but also exhibits excellent chemical and thermal stabilities as well as long-lived phosphorescence emission.