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首页> 外文期刊>Chemical engineering journal >Absorption of CO2 by amino acid-functionalized and traditional dicationic ionic liquids: Properties, Henry's law constants and mechanisms
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Absorption of CO2 by amino acid-functionalized and traditional dicationic ionic liquids: Properties, Henry's law constants and mechanisms

机译:氨基酸官能化和传统的离子型离子液体吸收CO2的性质,亨利定律常数和机理

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Six dicationic ionic liquids (DILs) were synthesized, including four amino acid-functionalized DILs (AA-DILs) and two traditional DILs (T-DILs), and were found to be effective for CO2 capture as reversible absorbents. Their physical properties were measured, containing density, conductivity, thermal decomposition temperature, glass transition temperature and viscosity. Their CO2 absorption behaviors under different pressures and temperatures with various water contents were also investigated. The results showed that the CO2 absorption capacities of pure AA-DILs were enhanced heavily compared to other monocationic ionic liquids. Mixing AA-DIL and water could be combined in a more rapid and efficient manner for CO2 gas capture, superior to the use of pure DIL only, due to their visible decrease in viscosity. The effect of temperature on CO2 absorption by aqueous AA-DIL mixtures at ambient pressure was extremely obvious: when temperature rose from 30 to 50 °C, the capacity of the 60 wt% [Bis(mim)C4][Pro]2 solution decreased from 1.52 to 0.78 mol/mol; as the pressure rose up to 10.0 bar, the total maximal capacity also dropped by more than a half. On the other hand, the two traditional DILs also exhibited an excellent physical absorption compared to varieties of monocationic ionic liquids.
机译:合成了六种离子型离子液体(DIL),包括四种氨基酸官能化的DIL(AA-DILs)和两种传统的DIL(T-DILs),发现它们可作为可逆吸收剂有效捕集CO2。测量了它们的物理性质,包括密度,电导率,热分解温度,玻璃化转变温度和粘度。还研究了它们在不同压力和温度,不同含水量下的CO2吸收行为。结果表明,与其他单阳离子离子液体相比,纯AA-DIL的CO2吸收能力大大提高。混合使用AA-DIL和水可以以更快,更有效的方式合并捕集CO2气体,由于其可见的粘度降低,优于仅使用纯DIL。温度对环境压力下AA-DIL水性混合物吸收CO2的影响非常明显:当温度从30升至50°C时,60 wt%[Bis(mim)C4] [Pro] 2溶液的容量降低1.52至0.78 mol / mol;随着压力上升至10.0 bar,总最大容量也下降了一半以上。另一方面,与各种单阳离子离子液体相比,两种传统的DIL也显示出出色的物理吸收性。

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