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Preparation of Graphene Oxide Composites and Assessment of Their Adsorption Properties for Lanthanum (III)

机译:石墨烯复合材料的制备及其对镧(III)的吸附性能评估

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In this study, graphene oxide (GO) was prepared using the improved Hummers’ method, and GO was carboxylated and modified into hydroxylated graphene oxide (GOH). Diatomaceous earth (DE), which exhibits stable chemical properties, a large specific surface area, and high porosity, as well as chitosan/magnetic chitosan, was loaded by solution blending. Subsequently, carboxylated graphene oxide/diatomite/chitosan (GOH/DCS) and carboxylated graphene oxide/diatomite/magnetic chitosan (GOH/DMCS) composites were prepared through simple solid–liquid separation. The results showed that the modified GOH/DCS and GOH/DMCS composites could be used to remove lanthanum La(III)), which is a rare earth element. Different factors, such as initial solution concentration, pH of the solution, adsorbent dosage, adsorption contact time, and adsorption reaction temperature, on adsorption, were studied, and the adsorption mechanism was explored. An adsorption–desorption recycling experiment was also used to evaluate the recycling performance of the composite material. The results show that at the initial solution concentration of 50 mg·g?1, pH = 8.0, 3 g·L?1 adsorbent dosage, reaction temperature of 45 °C, and adsorption time of 50 min, the adsorption effect is the best. The adsorption process is more in line with the pseudo-second-order kinetic model and Langmuir model, and the internal diffusion is not the only controlling effect. The adsorption process is an endothermic and spontaneous chemical adsorption process. The maximum adsorption capacity of GOH/DMCS for La(III) at 308K is 302.51 mg/g through model simulation. After four adsorption–desorption cycles, the adsorption capacity of the GOH/DMCS composite for La(III) initially exceeded 74%. So, GOH/DMCS can be used as a reusable and efficient adsorbent.
机译:在该研究中,使用改进的悍马法制料制备石墨烯(GO),并致羧化并改性成羟基化的石墨烯氧化物(oGh)。通过溶液混合加载含有稳定的化学性质,具有稳定的化学性质,大的比表面积和高孔隙率以及壳聚糖/磁性壳聚糖的硅藻土(DE)。随后,通过简单的固液分离制备羧化的石墨烯氧化物/硅藻土/脱脂胺/脱氨基酮/脱氨基酮(GOH / DC)和羧化石墨烯氧化物/硅藻土/磁性壳聚糖(GOH / DMCS)复合材料。结果表明,改性的伐木/ DC和伐木/ DMCS复合材料可用于去除镧La(III)),其是稀土元素。研究了不同因素,如初始溶液浓度,溶液的pH,吸附剂剂量,吸附接触时间和吸附反应温度,探讨吸附机理。吸附 - 解吸再循环实验还用于评估复合材料的再循环性能。结果表明,在初始溶液浓度为50mg·g?1,pH = 8.0,3g·l?1吸附剂剂量,反应温度为45℃,吸附时间为50分钟,吸附效果是最好的。吸附过程更加符合伪二阶动力学模型和Langmuir模型,内部扩散不是唯一的控制效果。吸附过程是吸热和自发性化学吸附过程。通过模型模拟,308K的LA(III)的GoH / DMCs的最大吸附容量为302.51mg / g。在四次吸附 - 解吸循环后,La(III)的GoH / DMCS复合材料的吸附能力最初超过74%。因此,GOH / DMC可用作可重复使用和高效的吸附剂。

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