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Silica film deposited on diamond-structured polymer microlattices by dip coating

机译:通过浸涂将二氧化硅膜沉积在金刚石结构的聚合物微晶格上

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摘要

The specific strength of lightweight cellular materials mainly depends on their structure and composition. In this study, polymer microlattices with diamond structures were fabricated by 3D printing. Then, silica materials with high strength were covered on the polymer microlattices using a dip-coating method, and we obtained polymer/SiO2 microlattices, which had the properties of low density, high compressive strength, and good thermostability. Moreover, three types of silica films with different thickness, i.e., 10.1 μm, 18.3 μm, and 23.6 μm, were deposited on the microlattices. The compressive strength of the polymer/SiO2 microlattices can be improved upon increasing the thickness of the silica coating. The thermostability of the polymer can be enhanced after coating with the silica materials and was improved more dramatically with a thicker coating. Light hollow-tube SiO2 microlattices with a density of 14.7 kg m?3 were also fabricated by calcining the polymer template at high temperatures.
机译:轻质多孔材料的比强度主要取决于其结构和组成。在这项研究中,具有金刚石结构的聚合物微晶格是通过3D打印制造的。然后,采用浸涂法将高强度的二氧化硅材料覆盖在聚合物微晶格上,得到具有低密度特性的聚合物/ SiO 2 微晶格。 ,高抗压强度和良好的热稳定性。此外,在微晶格上沉积了三种厚度不同的二氧化硅膜,即厚度分别为10.1μm,18.3μm和23.6μm。增加二氧化硅涂层的厚度可以提高聚合物/ SiO 2 微晶格的抗压强度。在用二氧化硅材料涂覆之后,可以提高聚合物的热稳定性,并且在更厚的涂层下可以更显着地提高聚合物的热稳定性。还通过煅烧制备了密度为14.7 kg m ?3 的轻质空心SiO 2 微晶格。聚合物模板在高温下。

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