Organic-inorganic nanocomposite organogel with double-network topology for enhanced mechanical and dielectric properties
作者:Dongdong Yan, Shilei Zhu, Hongyao Zhao, Shanhao Feng, Beibei Kang, Xin Yang, Yanjing Zhang, Zhuangzhuang Li, Wenwen Yu, Ya Nan Ye · 发表于:Supramolecular Materials · 年份:2025 · DOI:10.1016/j.supmat.2025.100112 · 被引用次数:5 · 研究领域:Conducting polymers and applications、Hydrogels: synthesis, properties, applications、Advanced Sensor and Energy Harvesting Materials
• Develop a sub-nanometer-scale organic-inorganic DN organogel by integrating flexible SNWs with a polymer (PtBA) matrix, drawing inspiration from the DN hydrogel toughening strategy. • The synergy of two types of networks facilitates effective energy dissipation, while SNWs reinforce the PtBA network, boosting tensile strength, stiffness, and toughness beyond conventional fillers. • The intertwined SNWs network not only enhances mechanical integrity but also tailors dielectric properties, including permittivity and breakdown strength. Conventional artificial nanocomposites often rely on simple blending, which can lead to agglomeration and interfacial incompatibility between the organic and inorganic phases. In contrast, natural mineralized tissues like bone and teeth exhibit outstanding mechanical performance through nanoscale, interpenetrating organic-inorganic networks. Inspired by these naturally integrated architectures, we report a double-network (DN) organic-inorganic organogel composite formed by topologically interweaving self-assembled polyoxometalate sub-nanowires (SNWs) with a poly(tert‑butyl acrylate) (PtBA) matrix. The SNWs feature sub-nanometer diameters and flexibility similar to polymer chains, enabling them to form an inorganic network that seamlessly integrates with the organic phase. This continuous, interpenetrating DN structure enhanced key mechanical properties—including tensile strength, stiffness, and toughness—while simultaneously regulating dielectr...