a.Key Laboratory of Materials Chemistry for Energy Conversion and Storage (HUST) of Ministry of Education, School of Chemistry and Chemical Engineering. Huazhong University of Science and Technology (HUST), Wuhan 430074, China
b.Key Laboratory of Optoelectronic Chemical Materials and Devices (Ministry of Education), Jianghan University, Wuhan 430056, China
c.Key Laboratory of Green Preparation and Application of Functional Materials (Ministry of Education), Hubei Key Laboratory of Polymer Materials, Faculty of Materials Science and Engineering, Hubei University, Wuhan 430062, China
yingying.wang@jhun.edu.cn (Y.Y.W.)
bjxiong@hust.edu.cn (B.J.X.)
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Surfactant Mediated Microphase Separation in Miscible Block Copolymer of Poly(4-vinyl pyridine-
Xiang-Yun Xu, Yu-Tong Gao, Ying-Ying Wang, et al. Surfactant Mediated Microphase Separation in Miscible Block Copolymer of Poly(4-vinyl pyridine-
Surfactant Mediated Microphase Separation in Miscible Block Copolymer of Poly(4-vinyl pyridine-
Xiang-Yun Xu, Yu-Tong Gao, Ying-Ying Wang, et al. Surfactant Mediated Microphase Separation in Miscible Block Copolymer of Poly(4-vinyl pyridine-
Based on the disordered miscible block copolymer P4VP-b-P4HBA, we constructed the ordered microphase separation structure via blending with amphiphilic surfactants. Through the noncovalent interaction between P4VP and different amphiphilic molecules. ordered microstructures were obtained, giving rise to a new perspective for the fabrication of hierarchical nanostructures and nanomaterials from miscible block copolymers.
Miscible disordered block copolymers (BCPs) are rarely studied due to the limits in self-assembly into ordered microstructures. Herein, we proposed a facile method for the transformation of disordered miscible BCPs to comb-like BCPs with well-ordered microphase separation structures ,via, blending with amphiphilic surfactants. In this work, poly(4-vinyl pyridine-,b,-hydroxybutylacrylate) (P4VP-,b,-P4HBA) was applied as a model of miscible disordered BCPs and the microphase separation was induced ,via, blending with surfactants of dodecylbenzene sulfonic acid (DBSA) and 3-pentadecylphenol (PDP). The ordered microstructures including spherical and cylindrical morphologies were confirmed by transmission electron microscopy (TEM) and small angle X-ray scattering (SAXS) investigation. These ordered microstructures thermal sensitive, in which ordered and disordered transformation (ODT) was observed in the blend of P4VP-,b,-P4HBA and PDP whereas it disappeared in the blend of P4VP-,b,-P4HBA and DBSA. The results show that the thermal stability of the ordered microstructures are strongly depends on the interactions between the miscible BCPs and surfactants, which investigated by,in situ, SAXS and Fourier transform infrared spectrometer (FTIR). The combination of miscible BCPs and surfactant creates a feasible strategy to fabricate ordered nanostructures, which could be employed to develop complicated nanomaterials.
Miscible block copolymerComb-like polymerMicro-phase separationSurfactantSupramolecular interaction
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