Iyer Divya, Galadari Mohammad, Wirawan Fernaldy, Huaco Vanessa, Martinez Ricardo, Gallagher Michael T, Pilon Laurent, Ono Kanji, Simonetti Dante A, Sant Gaurav N, Srivastava Samanvaya
Department of Chemical and Biomolecular Engineering, University of California, Los Angeles, California 90095, United States.
Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, California 90095, United States.
ACS Polym Au. 2024 Jan 16;4(1):86-97. doi: 10.1021/acspolymersau.3c00037. eCollection 2024 Feb 14.
We demonstrate facile fabrication of highly filled, lightweight organic-inorganic composites comprising polyurethanes covalently linked with naturally occurring clinoptilolite microparticles. These polyurethane/clinoptilolite (PUC) composites are shown to mitigate particle aggregation usually observed in composites with high particle loadings and possess enhanced thermal insulation and acoustic attenuation compared with conventionally employed materials (e.g., drywall and gypsum). In addition to these functional properties, the PUC composites also possess flexural strengths and strain capacities comparable to and higher than ordinary Portland cement (OPC), respectively, while being ∼1.5× lighter than OPC. The porosity, density, and mechanical and functional properties of these composites are tuned by systematically varying their composition (diisocyanate, polyurethane, and inorganic contents) and the nature of the organic (reactivity and source of polyol) components. The fabrication process involves mild curing conditions and uses commonly available reagents (naturally occurring aluminosilicate particles, polyols, and diisocyanate), thereby making the process scalable. Finally, the composite properties are shown to be independent of the polyol source (virgin or recycled), underlining the generality of this approach for the scalable utilization of recycled polyols.
我们展示了一种简便的方法来制备高度填充的轻质有机-无机复合材料,该复合材料由与天然斜发沸石微粒共价连接的聚氨酯组成。这些聚氨酯/斜发沸石(PUC)复合材料显示出可减轻通常在高颗粒负载复合材料中观察到的颗粒聚集现象,并且与传统使用的材料(如干墙和石膏)相比,具有增强的隔热和隔音性能。除了这些功能特性外,PUC复合材料的弯曲强度和应变能力分别与普通硅酸盐水泥(OPC)相当且高于OPC,同时比OPC轻约1.5倍。通过系统地改变它们的组成(二异氰酸酯、聚氨酯和无机含量)以及有机组分的性质(多元醇的反应性和来源)来调节这些复合材料的孔隙率、密度以及机械和功能特性。制备过程涉及温和的固化条件,并使用常见的试剂(天然铝硅酸盐颗粒、多元醇和二异氰酸酯),从而使该过程具有可扩展性。最后,复合材料的性能显示出与多元醇来源(原始或回收)无关,突出了这种方法在可扩展利用回收多元醇方面的通用性。