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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Chemical, physical, and mechanical characterization of isocyanate cross-linked amine-modified silica aerogels
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Chemical, physical, and mechanical characterization of isocyanate cross-linked amine-modified silica aerogels

机译:异氰酸酯交联胺改性二氧化硅气凝胶的化学,物理和机械表征

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摘要

We describe a new mechanically strong lightweight porous composite material obtained by encapsulating the skeletal framework of amine-modified silica aerogels with polyurea. The conformal polymer coating preserves the mesoporous structure of the underlying silica framework and the thermal conductivity remains low at 0.041 +/- 0.001 W m(-1) K-1. The potential of the new cross-linked silica aerogels for load-carrying applications was determined through characterization of their mechanical behavior under compression, three-point bending, and dynamic mechanical analysis (DMA). A primary glass transition temperature of 130 degrees C was identified through DMA. At room temperature, results indicate a hyperfoam behavior where in compression cross-linked aerogels are linearly elastic under small strains ( < 4%) and then exhibit yield behavior (until 40% strain), followed by densification and inelastic hardening. At room temperature the compressive Young's modulus and the Poisson's ratio were determined to be 129 +/- 8 MPa and 0. 18, respectively, while the strain at ultimate failure is 77% and the average specific compressive stress at ultimate failure is 3.89 x 10(5) N in kg(-1). The specific flexural strength is 2.16 x 10(4) N in kg(-1). Effects on the compressive behavior of strain rate and low temperature were also evaluated.
机译:我们描述了一种新的机械强度高的轻质多孔复合材料,该材料通过将胺改性的二氧化硅气凝胶的骨架骨架与聚脲封装在一起而获得。保形聚合物涂层保留了下面的二氧化硅骨架的介孔结构,并且热导率保持在0.041 +/- 0.001 W m(-1)K-1较低。通过表征其在压缩,三点弯曲和动态力学分析(DMA)下的机械性能,确定了新型交联二氧化硅气凝胶在负载应用中的潜力。通过DMA确定了130℃的初级玻璃化转变温度。在室温下,结果表明有超泡沫行为,在压缩状态下,交联气凝胶在小应变(<4%)下呈线性弹性,然后表现出屈服行为(直到40%应变),然后致密化和非弹性硬化。在室温下,测得的杨氏模量和泊松比分别为129 +/- 8 MPa和0. 18,而极限破坏时的应变为77%,极限破坏时的平均比压缩应力为3.89 x 10 (5)N单位为kg(-1)。比抗弯强度为2.16 x 10(4)N(kg(-1))。还评估了对应变率和低温压缩行为的影响。

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