首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Analysis of the CO2 chemisorption reaction mechanism in lithium oxosilicate (Li8SiO6): a new option for high-temperature CO2 capture
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Analysis of the CO2 chemisorption reaction mechanism in lithium oxosilicate (Li8SiO6): a new option for high-temperature CO2 capture

机译:含氧硅酸锂(Li8SiO6)中CO2化学吸附反应机理的分析:高温CO2捕集的新选择

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摘要

Lithium oxosilicate (Li8SiO6) was successfully synthesized via a solid-state reaction. The sample's structure and microstructure were characterized using X-ray diffraction, scanning electron microscopy and N2 adsorption. The CO2 chemisorption capacity was evaluated dynamically and isothermally. Li85iO6 was found to chemisorb CO2 over a wide temperature range with a maximum weight increase of 52.1 wt%, which corresponds to 11.8 mmol CO2 per gram ceramic. Using different thermogravimetric analyses with some structural and microstructural analyses, a CO2 chemisorption mechanism could be proposed, and the chemical species formed (Li4SiO4, Li2SiO3 and Li2CO3) during the CO2 capture process in Li8SiO6 could be elucidated. The kinetic parameter values (k) obtained for the Li8SiO6-CO2 reaction were higher than the k values previously reported for the Li4SiO4-CO2 reaction system. Additionally, AH* was found to be 53.1 kJ mol~(-1). According to these results, the Li8SiO6-CO2 chemisorption mechanism depends on the reaction temperature. Thus, Li8SiO6 may find potential applications as an alternative for CO2 capture because of its wide temperature range, CO2 chemisorption capacity and kinetic parameters.
机译:通过固相反应成功合成了含氧硅酸锂(Li8SiO6)。使用X射线衍射,扫描电子显微镜和N2吸附对样品的结构和微观结构进行表征。动态和等温地评估了CO2的化学吸附能力。发现Li85iO6在很宽的温度范围内化学吸附CO2,最大重量增加了52.1 wt%,相当于每克陶瓷11.8 mmol CO2。使用不同的热重分析,并进行一些结构和微观结构分析,可以提出CO 2的化学吸附机理,并阐明在Li 8 SiO 6中捕获CO 2的过程中形成的化学物质(Li 4 SiO 4,Li 2 SiO 3和Li 2 CO 3)。 Li8SiO6-CO2反应获得的动力学参数值(k)高于先前报道的Li4SiO4-CO2反应体系的k值。另外,发现AH *为53.1kJ mol·(-1)。根据这些结果,Li 8 SiO 6 -CO 2的化学吸附机理取决于反应温度。因此,Li8SiO6可能因其较宽的温度范围,CO2的化学吸附能力和动力学参数而有可能作为CO2捕获的替代方法。

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