Two-Dimensional Sheet-like Supramolecular Polymers from a Pt(II)-Coordinated Bipyridine Complex in Aqueous Solution

Abstract In recent years, considerable attention has been devoted to supramolecular architectures such as helical fibers, tubules, and nanotoroids (nanorings) owing to their unique physical properties. In this study, we synthesized a bipyridine-based Pt(II) complex bearing two chloride ions that act as a bidentate ligand. Interestingly, the resulting mononuclear bipyridine-based Pt(II) complex (PtCl2-L1) self-assembles into two-dimensional sheet-like supramolecular polymers. The monomeric PtCl2-L1 exhibits distinct spectroscopic behaviors depending on the composition of DMSO/H2O mixed solvents. When the water fraction exceeds 30%, PtCl2-L1 undergoes supramolecular polymerization. In particular, well-defined two-dimensional sheet-like structures are formed in a DMSO/H2O mixture (7:3, v/v). The resulting supramolecular polymer readily dissociates into monomeric species upon the addition of acetonitrile, demonstrating the reversible nature of the assembly process. Furthermore, the 2D sheet-like structures exhibit photoluminescence at 440 nm, which can be attributed to metal-to-ligand charge transfer (MLCT). The non-sigmoidal transition observed in the absorbance changes as a function of solvent composition was analyzed using a global fitting method, allowing determination of the intrinsic Gibbs free energy of the supramolecular polymerization. In addition, the conformers of the monomeric species and tetramers were investigated by density functional theory (DFT) calculations. The optimized geometries of a trimeric assembly of PtCl2-L1 were further simulated at the semi-empirical QM/PM6 level.

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Journal
ACS Omega
Published
2026-09-22
DOI
https://doi.org/10.1021/acsomega.6c08967
Primary Topic
Covalent Organic Framework Applications
Type
article
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article

Two-Dimensional Sheet-like Supramolecular Polymers from a Pt(II)-Coordinated Bipyridine Complex in Aqueous Solution

Heekyoung Choi, Jong Hwa Jung, Haeri Lee, Sukyoung Kim et al.
ACS Omega
Covalent Organic Framework Applications
article

Two-Dimensional Sheet-like Supramolecular Polymers from a Pt(II)-Coordinated Bipyridine Complex in Aqueous Solution

Heekyoung Choi, Jong Hwa Jung, Haeri Lee, Sukyoung Kim, Yumi Park, Minju Nam, Hyewon Jeon, Sohyeon Kwon
article en

Abstract

Abstract In recent years, considerable attention has been devoted to supramolecular architectures such as helical fibers, tubules, and nanotoroids (nanorings) owing to their unique physical properties. In this study, we synthesized a bipyridine-based Pt(II) complex bearing two chloride ions that act as a bidentate ligand. Interestingly, the resulting mononuclear bipyridine-based Pt(II) complex (PtCl2-L1) self-assembles into two-dimensional sheet-like supramolecular polymers. The monomeric PtCl2-L1 exhibits distinct spectroscopic behaviors depending on the composition of DMSO/H2O mixed solvents. When the water fraction exceeds 30%, PtCl2-L1 undergoes supramolecular polymerization. In particular, well-defined two-dimensional sheet-like structures are formed in a DMSO/H2O mixture (7:3, v/v). The resulting supramolecular polymer readily dissociates into monomeric species upon the addition of acetonitrile, demonstrating the reversible nature of the assembly process. Furthermore, the 2D sheet-like structures exhibit photoluminescence at 440 nm, which can be attributed to metal-to-ligand charge transfer (MLCT). The non-sigmoidal transition observed in the absorbance changes as a function of solvent composition was analyzed using a global fitting method, allowing determination of the intrinsic Gibbs free energy of the supramolecular polymerization. In addition, the conformers of the monomeric species and tetramers were investigated by density functional theory (DFT) calculations. The optimized geometries of a trimeric assembly of PtCl2-L1 were further simulated at the semi-empirical QM/PM6 level.

ACS Omega
Hannam University (KR), Gyeongsang National University (KR), Kyoto University (JP)
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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