Skeletal transformation to chiral nanocarbon molecules.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 42521683.
- Also identified by DOI 10.1038/s41467-026-75280-6 and PMC identifier 13416150.
- Licence recorded as CC BY-NC-ND.
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Abstract
Three-dimensional nanocarbon molecules are crucial building blocks for advanced carbon materials. However, the dependence of current synthetic methods on stepwise bond-forming approaches limits the available chemical space in this field. Here, we demonstrate that a skeletal-transformation approach solves two challenges in nanocarbon synthesis. Firstly, the inner-bond cleavage of π-conjugated hydrocarbons provides access to a ten-membered ring that exclusively contains sp<sup>2</sup>-hybridized carbons. The subsequent ring-expansion affords three gigantic decagon-containing chiral nanocarbon molecules with figure-eight or bathtub conformations consisting of up to 170 sp<sup>2</sup>-hybridized carbons. Secondly, the subsequent reformation of an internal double bond in the structure is applicable to two of three obtained nanocarbon molecules, which enables the regio- and enantio-selective synthesis of a helically twisted nanographene containing up to 26 six-membered rings. The crystal-packing structure of this chiral nanographene is characterized by a homochiral porous framework consisting of π-stacked double-helical assemblies. These results demonstrate that the skeletal-transformation approach, which has so far targeted bioactive molecules, can be applied to nanocarbon synthesis.