Synthesis and characterization of porous silica and composite films for enhanced CO₂ adsorption: A circular economy approach

Tzu-Teng Huang, Dieter Rahmadiawan, Shih-Chen Shi
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Abstract

This study explores the synthesis and application of carbon-negative technology that leverage circular economy and environmentally friendly methodologies. Porous silica using plant-derived silica sources and self-assembled lignin templates were prepared, achieving an impresive surface area of up to 104.76 m/g. Additionally, we prepared porous composite films via a freeze-drying process incorporating polyvinyl alcohol (PVA). These films demonstrated enhanced tensile properties, with a tensile strength reaching 285.72 kPa. Notably, the film surfaces engaged in a third-body tribology mechanism, which endowed them with excellent abrasion resistance and a low friction coefficient. The specific surface area of the films was measured at 20.15 m/g, making them ideal substrates for CO₂ adsorption functionalization. The functionalized films showcased outstanding CO₂ adsorption capabilities, with a maximum uptake of 29.38 mg/g. Furthermore, they retained over 90% of their adsorption capacity after five adsorption/desorption cycles. Under high CO₂ conditions, these composite films combine the desirable attributes of both solid and liquid adsorbents—high surface area, low volatility, and adsorption stability—contributing significantly to greenhouse gas mitigation and the pursuit of carbon neutrality.
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用于增强 CO₂ 吸附的多孔二氧化硅和复合薄膜的合成与表征:循环经济方法
本研究探讨了利用循环经济和环境友好方法合成和应用负碳技术。我们利用植物来源的二氧化硅和自组装木质素模板制备了多孔二氧化硅,使其表面积高达 104.76 m/g。此外,我们还通过冷冻干燥工艺制备了含有聚乙烯醇(PVA)的多孔复合薄膜。这些薄膜的拉伸性能得到增强,拉伸强度达到 285.72 kPa。值得注意的是,薄膜表面参与了第三体摩擦学机制,使其具有出色的耐磨性和较低的摩擦系数。薄膜的比表面积测量值为 20.15 m/g,使其成为 CO₂ 吸附功能化的理想基底。功能化薄膜具有出色的 CO₂ 吸附能力,最大吸附量为 29.38 mg/g。此外,经过五次吸附/解吸循环后,这些薄膜的吸附容量仍保持在 90% 以上。在高 CO₂ 条件下,这些复合薄膜兼具固态和液态吸附剂的理想特性--高表面积、低挥发性和吸附稳定性--极大地促进了温室气体减排和碳中和的实现。
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