Mousavi Seyed Vahid, Joolaei Ahranjani Parham, Farshineh Saei Sara, Mehrdadi Naser, Nabi Bidhendi Gholamreza, Jume Binta Hadi, Rezania Shahabaldin, Mojiri Amin
Sungun Copper Mine Complex, Environmental Health & Water Research, Varzeghan, East Azarbaijan, Iran; Faculty of Environment, School of Engineering, University of Tehran, Tehran, Iran.
Department of Microbial and Molecular Systems, Faculty of Bioscience Engineering, KU Leuven, Kasteelpark Arenberg 20, Box 2300, 13 B3001, Leuven, Belgium.
Chemosphere. 2022 Jun;297:134008. doi: 10.1016/j.chemosphere.2022.134008. Epub 2022 Feb 24.
The present study developed and evaluated nano-adsorbents based on zirconium oxide and graphene oxide (ZrO/GO) as a novel adsorbent for the efficient removal of ammonia from industrial effluents. Fourier transform infrared (FTIR) spectroscopy, Field Emission Scanning Electron Microscope, Energy-dispersive X-ray Spectroscopy, and X-ray diffraction were used to evaluate and identify the novel adsorbent in terms of morphology, crystallography, and chemical composition. The pH (7), adsorbent quantities (20 mg), adsorbent contact time (30 min) with the sample, and initial ammonia concentration were all tuned for ammonia uptake. To validate ammonia adsorption on the ZrO/GO adsorbent, several kinetic models and adsorption isotherms were also utilized. The results showed that the kinetics of ammonia adsorption are of the pseudo-second order due to high R (>0.99) value as compared first-order (R = 0.52). The chemical behavior and equilibrium isotherm were analyzed using the isotherm models and Langmuir model provided high R (>0.98) as compared Freundlich (>0.96). Hence, yielding a maximum uniform equilibrium adsorption capacity of 84.47 mg g. The presence of functional groups on the surface of graphene oxide and ZrO nanoparticles, which interact efficiently with ammonia species and provide an efficient surface for good ammonia removal, is most likely to be responsible.
本研究开发并评估了基于氧化锆和氧化石墨烯的纳米吸附剂(ZrO/GO),作为一种从工业废水中高效去除氨的新型吸附剂。利用傅里叶变换红外(FTIR)光谱、场发射扫描电子显微镜、能量色散X射线光谱和X射线衍射,从形态学、晶体学和化学成分方面对新型吸附剂进行评估和鉴定。对pH值(7)、吸附剂用量(20毫克)、吸附剂与样品的接触时间(30分钟)以及初始氨浓度进行了调整,以实现氨的吸收。为了验证氨在ZrO/GO吸附剂上的吸附情况,还采用了几种动力学模型和吸附等温线。结果表明,氨吸附动力学符合准二级动力学,因为与一级动力学(R = 0.52)相比,其R值较高(>0.99)。使用等温线模型分析化学行为和平衡等温线,与弗伦德里希等温线(>0.96)相比,朗缪尔模型的R值较高(>0.98)。因此,最大均匀平衡吸附容量为84.47毫克/克。最有可能的原因是氧化石墨烯和ZrO纳米颗粒表面存在官能团,它们能与氨物种有效相互作用,并为良好的氨去除提供了一个有效的表面。