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首页> 外文期刊>Physica, B. Condensed Matter >Simple fabrication of reduced graphene oxide -few layer MoS2 nanocomposite for enhanced electrochemical performance in supercapacitors and water purification
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Simple fabrication of reduced graphene oxide -few layer MoS2 nanocomposite for enhanced electrochemical performance in supercapacitors and water purification

机译:石墨烯氧化物 - 氧化物层MOS2纳米复合材料简单的制造,提高超级电容器和水净化的电化学性能

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Expelling of heavy metal ions into water resource systems is extremely hazardous to the environment. Adsorption is one of the most cost effective and potential methods to remove the heavy metal ions from the effluents. Therefore, an attempt has been made to study the adsorption of metal particles of Cd and Hg from aqueous solution by using reduced graphene oxide-molybdenum disulphide (rGO-MoS2) nanocomposites as adsorbents. The rGO-MoS2 composites were synthesized by following simple physical methods; which involve the mixing of dispersions of MoS2 and graphene oxide (GO) by sonication, followed by subsequent reduction with hydrazine hydrate. Characterization of the nanocomposites was performed by FESEM, TEM, EDAX, raman spectroscopy, XRD and BET surface area analysis. Electron microscopic images validate the presence of homogeneity in the synthesized nanocomposite. Batch adsorption experiments were used to scrutinizethe effect of an array of parameters like effect of pH, initial concentration of the metal ions, adsorbent dose, and contact time on the adsorption capacity of metal ions on rGO-MoS2 nanocomposites. The thorough examination of adsorbed isotherm and energy demonstrates the best fitting of the adsorption data with the 'Langmuir adsorption isotherm model' and follows the pseudo-second-order kinetic in active condition. The synthesized materials havealso been tested against Gram-positive and Gram-negative bacterial strains and have showcased promising antimicrobial activities. At the same time, the nanocomposites were evaluated for electrochemical performance in supercapacitors. The rGO-MoS2 nanocomposite demonstrates better capacitance (440 Fg(-1)) at 5 mvs(-1) scan rate. The inimitable surface property of MoS2 and good electrical conductivity of rGO results show versatile usage and formidable performance as an adsorbent, antibacterial agent and electrode material for supercapacitors.
机译:将重金属离子进入水资源系统对环境极为危险。吸附是从流出物中除去重金属离子的最具成本效益和潜在的方法之一。因此,已经尝试通过使用降脂的石墨烯氧化钼(RGO-MOS2)纳米复合材料作为吸附剂,研究来自水溶液的金属颗粒和Hg的吸附。通过以下简单的物理方法合成RGO-MOS2复合材料;这涉及通过超声处理混合MOS2和石墨烯氧化物(GO)的分散体,然后用肼水合物减少。纳米复合材料的表征通过FeSem,TEM,edax,拉曼光谱,XRD和BET表面积分析进行。电子显微图像验证合成纳米复合材料中均匀性的存在。分批吸附实验用于审查阵列的参数阵列,如pH,初始浓度的金属离子,吸附剂剂量,接触时间对RGO-MOS2纳米复合材料上金属离子的吸附容量的影响。对吸附等温线和能量的彻底检查表明吸附数据与“Langmuir吸附等温线”的最佳拟合,并在积极条件下遵循伪二阶动力学。合成的材料已经过针对革兰氏阳性和革兰氏阴性细菌菌株进行测试,并展示了有前途的抗微生物活性。同时,评价纳米复合材料在超级电容器中进行电化学性能。 RGO-MOS2纳米复合材料在5mVs(-1)扫描速率下表现出更好的电容(440 fg(-1))。 MOS2的不同表面特性和RGO结果的良好电导率显示多功能使用和适用性能作为吸附剂,抗菌剂和超级电容器的电极材料。

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