Abas Khadiga Mohamed, Al Kiey Sherief A
Laboratory of Surface Chemistry and Catalysis, National Research Centre, 33 El-Bohouth St., Giza, 12622, Egypt.
Electrochemistry and Corrosion Laboratory, Physical Chemistry Department, National Research Centre, Dokki, Cairo, 12622, Egypt.
BMC Chem. 2023 Sep 26;17(1):126. doi: 10.1186/s13065-023-01038-6.
Metal-organic framework (MOF)-derived materials have gained an increasing interest and showed potential adsorption features in numerous applications. Significant attempts have been performed to boost the structure, functionality, surface area and porosity in addition to adsorption performance of MOF-derived carbon nanoparticles. Here, nitrogen-doped ZnO/carbon nanoparticles were synthesized by directly pyrolysis of Zn based metal organic framework (ZIF-8) in a nitrogen atmosphere at two different temperatures (600 and 800 °C), followed by chemical impregnation with ZnCl solution with ratio (10:1) wt/wt, and thermal activation at 500 °C for 1 h. SEM, TEM, XPS, nitrogen adsorption-desorption method, and TGA characterization techniques were employed to investigate the morphology and structure characteristics. Then, thorough analysis of N doped ZnO/C-(600 and 800), adsorption capacity to remove Remazol brilliant blue reactive (RBBR) dye from aqueous phase was conducted. At room temperature, the porous N doped ZnO/C with high surface area attained a maximum adsorption capacity about 49.3 mg/g and demonstrated a strong adsorption capacity toward RBBR dye. The insights of kinetic, thermodynamic and adsorption isotherm studies of the as-demonstrated samples open up more discussion for MOFs-derived carbon adsorbents for wastewater treatment.
金属有机框架(MOF)衍生材料已越来越受到关注,并在众多应用中展现出潜在的吸附特性。除了提高MOF衍生碳纳米颗粒的吸附性能外,人们还进行了大量尝试来改善其结构、功能、表面积和孔隙率。在此,通过在氮气气氛中于两种不同温度(600和800°C)下直接热解锌基金属有机框架(ZIF-8),随后用比例为(10:1)wt/wt的ZnCl溶液进行化学浸渍,并在500°C下热活化1小时,合成了氮掺杂的ZnO/碳纳米颗粒。采用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X射线光电子能谱(XPS)、氮气吸附-脱附法和热重分析(TGA)表征技术来研究其形态和结构特征。然后,对N掺杂的ZnO/C-(600和800)从水相中去除活性艳蓝(RBBR)染料的吸附容量进行了深入分析。在室温下,具有高表面积的多孔N掺杂ZnO/C达到了约49.3 mg/g的最大吸附容量,并对RBBR染料表现出很强的吸附能力。所展示样品的动力学、热力学和吸附等温线研究结果为用于废水处理的MOF衍生碳吸附剂开辟了更多的讨论空间。