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Printing Thermoresponsive Reverse Molds for the Creation of Patterned Two-component Hydrogels for 3D Cell Culture
Published on: July 10, 2013
Wear-resistant, moldable mineral hydroplastics via nonsolvent-induced phase separation for adaptive architectural
Junqing Chen1, Shanshan Wang2, Erlantz Lizundia3
1Hubei Biomass-Resource Chemistry and Environmental Biotechnology Key Laboratory, Hubei Provincial Engineering Research Center of Emerging Functional Coating Materials, School of Resource and Environmental Sciences, Wuhan University, Wuhan 430079, China.
Abstract:
The development of sustainable plastic alternatives derived from natural components, such as biopolymers and minerals, represents a promising strategy to mitigate the escalating problem of plastic pollution. Here, by employing a nonsolvent-induced phase separation (NIPS) strategy, a hydro-processable mineral-dominated structural material, called "mineral hydroplastic" (M-Hydroplastic), is developed. High-mineral-content (up to 75 wt %) hydrogels are fabricated through in situ polymerization of specific monomers and shaped under mild conditions through polymer chain rearrangement triggered by nonsolvent exposure. Further pressing-assisted desolvation optimizes the orientation of mineral sheets, yielding hydro-processable high-mineral-content plastics with combined features of mineral (flexural strength, 90.6 MPa; hardness, 0.23 GPa; and flame retardancy) and plastic (low density of ∼1.5 g cm-3 and facile moldability). Combined experimental and computational analyses reveal that strong intercomponent hydrogen bonding and a nacre-like micro-structure underpin the material's exceptional mechanical performance. This versatile strategy is applicable to various minerals, producing a family of robust hydroplastics with tunable optical, thermal, and radiative properties. Such adaptability enables the design of multifunctional, flame-retardant materials for multi-scenario energy-efficient building applications. This work reconciles ceramic-like mechanical properties with polymer-like processability, providing crucial insights into designing next-generation plastic alternatives for engineering applications.

