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Adsorption of small polarisable molecules using mesoporous carbonaceous materials

机译:使用介孔碳质材料吸附可极化的小分子

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摘要

Discovered and first reported 11 years ago by the York Green Chemistry Centre of Excellence, Starbon® is carbonaceous mesoporous material derived from polysaccharides (starch or alginic acid). These renewable materials represent a greener, more efficient, cheaper and more selective alternative than other commercial options in reducing emissions from power stations, chemical and other large scale manufacturing plants. It has been shown that the Starbon® materials were successfully applied in chromatography, noble metals and large dye molecules adsorption. The next ambition is to utilize the unique textural properties and surface chemistry of the Starbon® for adsorption adsorption of small gas molecule. It is an interesting challenge because the microporosity is the key factor in small molecules adsorption and there is a little information about role of mesoporosity in this process. Starbons® have much lower microporosities, but adsorb up to 65% more CO2 than activated carbon. Furthermore, novel Starbons®-graphene composite materials developed during the project adsorb even more CO2 due to their very microporous combination with graphene. During the project it has been demonstrated that the adsorption capacity of the micropore system to adsorb small molecules could be significantly increased in the presence of mesopore. This phenomenon has been shown on the example of adsorption of small polarizable molecules such as CO2 and NH3.udIt has been found that carbonaceous materials could adsorb ammonia by micropores (reversible process) and chemically interact with their surface functional groups (irreversible process). The chemisorption of ammonia onto the Starbon® being correlated with the functionality surface and the temperature of the adsorption. Moreover, the NH3 interaction with Starbons® led to new bio-based nitrile-containing mesoporous materials. The introduction of nitrogen is expected to improve CO2 capture performance, heavy-metal binding, conductivity and catalytic activity, most notably in the metal-free oxidative reduction reaction. Because Starbons® display a high adsorption of CO2 and NH3 there may be potential to use them in the adsorption of other small molecules, as NOx, SOx. Further research would need to take place in order to discover Starbon® potential in adsorption of these small molecules.
机译:Starbon®是约克绿色化学卓越中心于11年前发现并首次报道的,它是衍生自多糖(淀粉或海藻酸)的碳质介孔材料。与其他商业选择相比,这些可再生材料在减少发电厂,化工厂和其他大型制造厂的排放方面是一种比其他商业选择更绿色,更高效,更便宜和更具选择性的选择。事实证明,Starbon®材料已成功应用于色谱,贵金属和大染料分子吸附。下一个目标是利用Starbon®独特的质地特性和表面化学性质来吸附小气体分子。这是一个有趣的挑战,因为微孔性是小分子吸附的关键因素,并且关于中孔在此过程中的作用的信息很少。 Starbons®的微孔率低得多,但与活性炭相比,最多吸收65%的二氧化碳。此外,由于在项目中开发的新型Starbons®-石墨烯复合材料与石墨烯的微孔结合性更高,因此可以吸收更多的CO2。在项目过程中,已经证明,在中孔存在下,微孔系统吸附小分子的吸附能力会大大提高。已在吸附小的可极化分子(例如CO2和NH3)的示例中显示了这种现象。 ud已发现碳质材料可以通过微孔(可逆过程)吸附氨并与其表面官能团发生化学相互作用(不可逆过程)。氨在Starbon®上的化学吸附与功能性表面和吸附温度有关。此外,NH3与Starbons®的相互作用产生了新的生物基含腈介孔材料。引入氮有望改善CO2捕集性能,重金属结合,电导率和催化活性,特别是在无金属的氧化还原反应中。由于Starbons®表现出对CO2和NH3的高吸附性,因此有可能将它们用于吸附其他小分子,如NOx,SOx。为了发现Starbon®在吸附这些小分子方面的潜力,还需要进行进一步的研究。

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    Milescu Roxana Alina;

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