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◆ RSC advances2026-08-14

Polymer nanocomposites with hybrid nanoparticles: architecture-process-structure-property-performance perspectives.

Tasnim Alam Subah, Hasan Tasnim Salehin, Rakibul Hasan Rafi, Md Fozle Rabbi, Sayem Kawsar, Sumaiya Khan, Shahla Rahman, Sifat Kawsar, Md Zillur Rahman

原始摘要(英文原文)· Original abstract
Hybrid polymer nanocomposites have become central to the development of lightweight, high-performance, and sustainable materials in response to growing demands from electrification, advanced manufacturing, and multifunctional device technologies. In this context, hybrid nanoparticles, single nanoscale entities integrating two or more distinct nanophases, offer a timely and powerful route to overcoming the intrinsic property trade-offs of single-filler systems by enabling synergistic interactions and programmable interfacial behavior. This review critically examines polymer nanocomposites reinforced with hybrid nanoparticles, covering key hybrid nanoparticle architectures, including core-shell, Janus, heterodimer, decorated, and yolk-shell systems, as well as deliberately combined hybrid nanofiller systems, representative polymer matrices (thermoplastics, thermosets, and biopolymers), and major application domains spanning aerospace, construction, electronics, energy, biomedical, and environmental technologies. The field is structured using an architecture-process-property-application framework that links hybrid nanoparticle design, dispersion, and interphase engineering to macroscopic mechanical, thermal, electrical, optical, barrier, flame-retardant, and smart/stimuli-responsive functionalities. Synthesized evidence across the literature demonstrates that well-designed hybrid nanoparticle systems can simultaneously enhance stiffness and toughness, thermal stability and transport, electrical and dielectric performance, and multifunctionality at lower filler loadings than single-component counterparts. However, the review also highlights persistent challenges that limit translation, including reproducible dispersion at industrially relevant scales, incomplete structure-property correlations for complex hybrid architectures, inconsistent experimental reporting, processing-induced variability, and unresolved life-cycle, health, and safety considerations. Finally, concrete future directions are identified, emphasizing the need for standardized descriptors and benchmarking protocols, scalable, energy-efficient manufacturing routes, integration of in-line and multiscale characterization with processing, and adoption of sustainability- and safety-by-design strategies to enable the reliable transition of hybrid nanoparticle-polymer nanocomposites from laboratory concepts to real-world applications.
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Polymer nanocomposites with hybrid nanoparticles: architecture-process-structure-property-performance perspectives. — 科研速览 Science Skim