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Porous carbons derived from polyethylene terephthalate (PET) waste for CO_2 capture studies

机译:衍生自聚对苯二甲酸乙二醇酯(PET)废物的多孔碳,用于CO_2捕获研究

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Oxygen augmented carbon adsorbent has been developed using polyethylene terephthalate (PET) waste by first carbonizing at different temperatures (500-800 degrees C) and then chemically activating using different ratios of KOH: PET (mass ratio 1 to 4). The textural characterization divulges the effect of activation in terms of the development of the high surface area and micropore volume of 1690 m(2) g(-1) and 0.78 cm(3) g(-1) respectively, for the optimum sample (PET-3-700). Elemental analysis of PET-3.700 illustrates the presence of 34.33% oxygen and XPS results confirmed the occurrence of oxygen moieties which enhance the basicity of the adsorbent and promote CO2 capture. The CO2 adsorption capacity of prepared carbons was determined thermogravimetrically under dynamic conditions, at different concentrations of CO2 (6-100%) and temperatures. The maximum CO2 uptake capacity of 2.31 mmol g(-1) was exhibited by PET-3.700 at an adsorption temperature of 30 degrees C under 100% pure CO2 flow. Four adsorption-desorption cycles corroborate almost complete regenerability of the prepared adsorbent. Adsorption kinetics at all adsorption conditions was described best by fractional order kinetic model. Freundlich isotherm fit indicates the surface of adsorbent being heterogeneous and low values of isosteric heat shows physisorption behavior of the process. Negative values of thermodynamic parameters indicate exothermic and feasible nature of adsorption process.
机译:通过在不同温度(500-800℃)下的第一次碳化在不同的温度下使用聚对苯二甲酸乙二醇酯(PET)废物来开发氧气增强碳吸附剂,然后使用不同的KOH:PET(质量比1至4)化学激活。纹理表征分别在高表面积和微孔体积为1690μm(2)克(-1)和0.78cm(3 )g(-1)的高表面积和微孔体积方面的效果,用于最佳样品( PET-3-700)。 PET-3.700的元素分析说明了34.33%的氧气和XPS结果的存在证实氧气部分的发生,增强了吸附剂的碱度并促进了CO2捕获。在动态条件下,在不同浓度的CO 2(6-100%)和温度下,制备碳的CO 2吸附容量在动态条件下测定。 PET-3.700在100%纯CO 2流量下,PET-3.700在30℃的吸附温度下展现了2.31mmol G(-1)的最大CO 2摄取容量。四个吸附 - 解吸循环确凿几乎完全的制备吸附剂的再生性。所有吸附条件下的吸附动力学最佳地由分数级动力学模型最佳地描述。 Freundlich等温机构表示吸附剂的表面是异构性和较低值的基位热,显示了该方法的物理吸取行为。热力学参数的负值表明吸附过程的放热和可行性。

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