On-liquid surface synthesis of diyne-linked two-dimensional polymer crystals

Y Ye Yang Y Yufeng Wu C Chang Liu M Mike Hambsch T Tiange Dong D David Bodesheim M Mahabir Prasad A Arezoo Dianat T Thomas D. Kühne (CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany) G Gianaurelio Cuniberti (Institute for Materials Science and Max Bergmann Center of Biomaterials) S Stefan C. B. Mannsfeld S Stuart S. P. Parkin R Renhao Dong Z Zhiyong Wang X Xinliang Feng

Abstract

Abstract The synthesis of thin crystalline two-dimensional polymers (2DPs) typically relies on reversible dynamic covalent reactions. While substantial progress has been made in solution-based and interfacial syntheses, achieving 2DPs through irreversible carbon-carbon coupling reactions remains a formidable challenge. Herein, we present an on-liquid surface (a mixture of N,N-dimethylacetamide and water, DMAc-H2O) synthesis method for constructing diyne-linked 2DP (DY2DP) crystals via Glaser coupling, assisted by a perfluoro-surfactant (PFS) monolayer. In-situ spectroscopic and diffraction techniques reveal that the well-ordered PFS monolayer facilitates the accumulation of Cu+ ions and subsequent vertical coupling of acetylenic monomers on the DMAc-H2O surface. Building on these findings, we successfully synthesized micro-scale rod-shaped DY2DP-Por or graphdiyne (GDY) crystals through the polymerization of porphyrin- or benzene-based monomers, respectively. Our study represents a significant advancement in the field of on-liquid surface chemistry and opens up enormous opportunities for constructing C—C bond linked 2DP crystals with unique functionalities.

Article Details

Volume / Issue Vol. 16, Issue 1
Published September 08, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

Y

Ye Yang

Y

Yufeng Wu

C

Chang Liu

M

Mike Hambsch

T

Tiange Dong

D

David Bodesheim

M

Mahabir Prasad

A

Arezoo Dianat

T

Thomas D. Kühne

CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany

G

Gianaurelio Cuniberti

Institute for Materials Science and Max Bergmann Center of Biomaterials

S

Stefan C. B. Mannsfeld

S

Stuart S. P. Parkin

R

Renhao Dong

Z

Zhiyong Wang

X

Xinliang Feng