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Multi-walled carbon nanotubes improve the physicochemical properties of mesostructured silica nanoparticles for efficient adsorption of methylene blue

机译:多壁碳纳米管改善了介孔结构二氧化硅纳米粒子的理化性质,可有效吸附亚甲基蓝

摘要

Carbon nanotubes (CNTs) have attracted great attention in nanoscale science and technology due to their unique optical, electronic a nd mechanical properties 1 . Besides, mesostructured silica nanoparticles (MSN) have become effective adsorbents owe to its high surface area and pore size which is essential to adsorb wide range of organic pollutant 2-4 . Modification of CNT with MSN may enhance the dispersion properties and adsorption capacities from their singles. In this study, a series of carbon nanotubes–mesostructured silica nanoparticles (CNT–MSN) composites were prepared by a simple sol-gel method with 1, 3 and 5 wt.% loading of CNT. The composites then calcined to remove surfactants (Scheme 1). Their surface properties were characterized by XRD, N 2 physisorption, TEM and FTIR, while the adsorption performance of the CNT–MSN composites were evaluated on the adsorption of methylene blue (MB) under varying pH (2–11), adsorbent dosage (0.05–0.5 g L - 1 ), initial MB concentration (5–100 mg L -1 ) and temperature (303-323 K). The increasing CNT loading into MSN were found to improve the physicochemical properties of the material and led to an enhanced adsorptivity for MB. N 2 physisorption measurements revealed the developmen t of a bimodal pore structure that increased the pore size, pore volume and surface area. The best conditions were achieved at pH 8, 0.05 g L -1 CNT–MSN dosage, 100 mg L -1 MB concentration and 303 K. The maximum adsorption capacity re ached for 5 wt.% CNT- MSN was 524 mg g -1 . The equilibrium data were evaluated using the Langmuir and Freundlich isotherm models, with the Langmuir model affording the best fit to the adsorption data. The adsorption kinetics was best described by the pseudo-first order model. Thermodynamic studies showed that the adsorption process was spontaneous, exothermic and occur through physisorption mechanism. Therefore, CNT-MSN is believed to be a promising adsorbent for dye removal as well as removal of wide range wastewater.
机译:碳纳米管(CNTs)由于其独特的光学,电子和机械性能1而在纳米级科学和技术领域引起了极大的关注。此外,介孔结构的二氧化硅纳米粒子(MSN)由于其高表面积和孔径而成为有效的吸附剂,这对于吸附各种有机污染物2-4是必不可少的。用MSN改性CNT可以提高其分散性能和吸附能力。在这项研究中,通过简单的溶胶-凝胶法以1、3和5重量%的CNT负载量制备了一系列碳纳米管-介观结构的二氧化硅纳米粒子(CNT-MSN)复合材料。然后将复合材料煅烧以除去表面活性剂(方案1)。通过XRD,N 2物理吸附,TEM和FTIR表征了它们的表面性能,而在不同pH(2-11),吸附剂量(0.05)下,对亚甲基蓝(MB)的吸附性能评估了CNT-MSN复合材料的吸附性能。 –0.5 g L-1),初始MB浓度(5-100 mg L -1)和温度(303-323 K)。发现增加到MSN中的CNT负载可以改善材料的物理化学性质,并导致MB的吸附性增强。 N 2物理吸附测量揭示了双峰孔结构的发展,该结构增加了孔径,孔体积和表面积。在pH 8、0.05 g L -1 CNT-MSN剂量,100 mg L -1 MB浓度和303 K的条件下达到了最佳条件。5wt。%CNT-MSN的最大吸附容量为524 mg g -1 。使用Langmuir和Freundlich等温线模型评估平衡数据,Langmuir模型对吸附数据提供最佳拟合。吸附动力学最好用拟一阶模型描述。热力学研究表明,吸附过程是自发的,放热的,是通过物理吸附机制发生的。因此,CNT-MSN被认为是用于染料去除以及广泛废水去除的有前途的吸附剂。

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