In this study, single-chain atomic crystals (SCACs), MoSe, which can be uniformly dispersed, with an atomically thin diameter of ∼0.6 nm were modified to disperse in an organic solvent. Various surfactants were chosen to provide steric hindrance to aqueous-dispersed MoSe by modifying the surface of MoSe. The organic dispersions of surface-modified MoSe SCACs in nonpolar solvent (toluene, benzene, and chloroform) were stable with a uniform diameter of 2 nm, and they have enhanced stability from oxidation (>10 days). With the surfactants that have a polystyrene tail group (PS-NH), the surface-modified MoSe SCAC showed high compatibility with a polystyrene polymer matrix. Using the surface-modified MoSe SCAC, a homogeneous MoSe/polystyrene/toluene organogel was prepared. More importantly, the MoSe/polystyrene organogel exhibits significantly enhanced mechanical properties, with the improvement of 202.27% and 279.52% for tensile strength and elongation, respectively, compared with that of the pure organogel. The surface-modified MoSe had a similar structure with a polymer matrix, and the properties of the polymer can be improved even with a small addition of MoSe.

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http://dx.doi.org/10.1021/acsnano.2c00965DOI Listing

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