首页> 外文期刊>ACS applied materials & interfaces >Effect of Extended Aging and Oxidation on Linear Poly(propylenimine)-Mesoporous Silica Composites for CO2 Capture from Simulated Air and Flue Gas Streams
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Effect of Extended Aging and Oxidation on Linear Poly(propylenimine)-Mesoporous Silica Composites for CO2 Capture from Simulated Air and Flue Gas Streams

机译:延长老化和氧化对线性聚(丙基亚胺)二氧化硅复合材料的影响,二氧化硅复合材料与模拟空气和烟气流捕获

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Physical aging or degradation of amine-containing polymers and supported amine adsorbents is a critical issue that could limit the practical application of such materials for CO2 capture. However, to date, there is a scarcity of studies that evaluate the long-term stability of amine-based sorbents without the exclusive use of accelerated aging tests. Here, we demonstrate that extended aging (similar to 2 years) of linear poly(propylenimine) (LPPI) confined in mesoporous silica (SBA-15) supports does not drastically impact the CO(2 )adsorption performance under simulated flue gas (10% CO2) and direct air capture (DAC, 400 ppm CO2) conditions, although the behavior of the aged sorbents and polymers in the two CO2 concentration regimes differs. The sorbents made with aged LPPI have modestly decreased CO2 uptake performance (less than or similar to 20% lower) compared to the fresh polymers, with overall good CO2 cycling performance. The data indicate that only slow degradation occurs under the deployed ambient storage conditions. Even after extended aging, the LPPI-based sorbents preserved their ability to display stable temperature-swing cycling performance. In parallel, the impact of blending LPPI polymers of different number-average molecular weights, M-n, is evaluated, seeking to understand its impact on adsorbent performance. The results demonstrate that the blends of two M-n aged LPPI give similar CO2 adsorption performance to adsorbents made from a single-M-n LPPI, suggesting that molecular weight will not negatively impact adsorbent performance in the studied M-n range. After an accelerated oxidation experiment, the aged LPPI sorbents retained a larger portion of the samples' original performance when cycling under simulated flue gas conditions than under DAC conditions. However, in each case, the oxidized sorbents could be cycled repeatedly with consistent uptake performance. Overall, these first of their kind extended aging tests suggest that LPPI-based amine adsorbents offer promise for long-term, stable use in carbon capture applications.
机译:含胺聚合物和负载型胺吸附剂的物理衰老或降解是可能限制这些材料用于CO2捕获的实际应用的关键问题。然而,迄今为止,缺乏研究,评价胺基吸附剂的长期稳定性,而无需使用加速的衰老试验。这里,我们证明狭窄在中孔二氧化硅(SBA-15)支撑件中的延长的老化(类似于2年)的线性聚(丙基)(LPPI)在模拟烟道气(10%)下没有突显地影响CO(2)的吸附性能(10% CO2)和直接空气捕获(DAC,400ppm CO2)条件,尽管老化的吸附剂和两种CO 2浓度制度中的聚合物的行为不同。与新鲜聚合物相比,用老化LPPI制备的吸附剂具有适度降低的二氧化碳摄取性能(小于或类似于20%),具有整体良好的CO 2循环性能。数据表明,只有在部署的环境存储条件下只发生缓慢的劣化。即使在延长老化之后,LPPI的吸附剂也保留了它们显示稳定的温度 - 摆动循环性能的能力。并行地,评估不同数均分子量M-N的混合LPPI聚合物的影响,寻求理解其对吸附性能的影响。结果表明,两种M-N老化LPPI的共混物给出了由单个M-N LPPI制备的吸附剂的类似CO 2吸附性能,表明分子量不会对所研究的M-N范围产生负面影响吸附性能。在加速氧化实验之后,当在模拟烟道气条件下循环时,老化的LPPI吸附剂在模拟烟道气条件下循环时保留了更大的样品的原始性能。然而,在每种情况下,可以以一致的摄取性能重复循环氧化吸附剂。总体而言,这些延长老化测试的首先表明,基于LPPI的胺吸附剂在碳捕获应用中提供了长期稳定使用的承诺。

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