Intra- and intermolecular self-assembly of a 20-nm-wide supramolecular hexagonal grid

For the past three decades, the coordination-driven self-assembly of three-dimensional structures has undergone rapid progress; however, parallel efforts to create large discrete two-dimensional architectures—as opposed to polymers—have met with limited success. The synthesis of metallo-supramolecul...

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Veröffentlicht in:Nature Chemistry 2020-05, Vol.12 (5), p.468-474
Hauptverfasser: Zhang, Zhe, Li, Yiming, Song, Bo, Zhang, Yuan, Jiang, Xin, Wang, Ming, Tumbleson, Ryan, Liu, Changlin, Wang, Pingshan, Hao, Xin-Qi, Rojas, Tomas, Ngo, Anh T., Sessler, Jonathan L., Newkome, George R., Hla, Saw Wai, Li, Xiaopeng
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Sprache:eng
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Zusammenfassung:For the past three decades, the coordination-driven self-assembly of three-dimensional structures has undergone rapid progress; however, parallel efforts to create large discrete two-dimensional architectures—as opposed to polymers—have met with limited success. The synthesis of metallo-supramolecular systems with well-defined shapes and sizes in the range of 10–100 nm remains challenging. Here we report the construction of a series of giant supramolecular hexagonal grids, with diameters on the order of 20 nm and molecular weights greater than 65 kDa, through a combination of intra- and intermolecular metal-mediated self-assembly steps. The hexagonal intermediates and the resulting self-assembled grid architectures were imaged at submolecular resolution by scanning tunnelling microscopy. Characterization (including by scanning tunnelling spectroscopy) enabled the unambiguous atomic-scale determination of fourteen hexagonal grid isomers. Metal-mediated self-assembly in solution typically leads to small two- and three-dimensional architectures on scales smaller than 10 nm, but now a series of large, discrete, two-dimensional supramolecular hexagonal grids have been prepared through a combination of intra- and intermolecular coordination interactions. These 20-nm-wide grids have been imaged at submolecular resolution using scanning tunnelling microscopy.
ISSN:1755-4330
1755-4349
DOI:10.1038/s41557-020-0454-z