Fascinating Morphologies and Hybrid Nanostructures via Block Copolymer/Nanoparticle Self-Assembly

IF 5.1 1区 化学 Q1 POLYMER SCIENCE
Sajan Singh, Bhanu Nandan
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Abstract

Block copolymers (BCPs) have emerged as key materials due to their ability to self-assemble into a variety of well-defined nanostructures, which are essential for applications in nanotechnology, electronics, and materials science. Integrating inorganic nanoparticles (NPs) into BCPs creates hybrid materials with enhanced properties and provides new opportunities for advanced functional materials. This Perspective summarizes research from our group and others, focusing on the self-assembly behavior of BCP/NP hybrids, the resulting unique morphologies, and their potential applications. Highlighting our research group’s contributions, we discover the formation of complex nanostructures, including the helical packing of silver nanoparticles within cylindrical domains of polystyrene-block-poly(4-vinylpyridine) (PS-bP4VP) diblock copolymers and the stable perforated lamellar morphology achieved in bulk form. Our studies demonstrate that precise control over nanoparticle localization and distribution within the BCP structure is crucial for tailoring the material properties. We provide insights into the factors influencing these processes, including nanoparticle size, concentration, and surface chemistry, as well as the inherent properties of the BCPs. Furthermore, we have demonstrated that the hybrid bulk structure could be further used to create functional nanostructures that exhibit interesting photophysical properties. This Perspective highlights the potential of BCP/NP hybrids in developing next-generation functional materials and outlines future research directions in this evolving field.

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来源期刊
Macromolecules
Macromolecules 工程技术-高分子科学
CiteScore
9.30
自引率
16.40%
发文量
942
审稿时长
2 months
期刊介绍: Macromolecules publishes original, fundamental, and impactful research on all aspects of polymer science. Topics of interest include synthesis (e.g., controlled polymerizations, polymerization catalysis, post polymerization modification, new monomer structures and polymer architectures, and polymerization mechanisms/kinetics analysis); phase behavior, thermodynamics, dynamic, and ordering/disordering phenomena (e.g., self-assembly, gelation, crystallization, solution/melt/solid-state characteristics); structure and properties (e.g., mechanical and rheological properties, surface/interfacial characteristics, electronic and transport properties); new state of the art characterization (e.g., spectroscopy, scattering, microscopy, rheology), simulation (e.g., Monte Carlo, molecular dynamics, multi-scale/coarse-grained modeling), and theoretical methods. Renewable/sustainable polymers, polymer networks, responsive polymers, electro-, magneto- and opto-active macromolecules, inorganic polymers, charge-transporting polymers (ion-containing, semiconducting, and conducting), nanostructured polymers, and polymer composites are also of interest. Typical papers published in Macromolecules showcase important and innovative concepts, experimental methods/observations, and theoretical/computational approaches that demonstrate a fundamental advance in the understanding of polymers.
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