El-Sabbagh Sabha M, Mira Hamed I, Desouky Osman A, Hussien Shimaa S, Elgohary Dina M, Ali Anwaar O, El Naggar Ahmed M A
Department of Microbiology, Faculty of Science, Menoufia University Menoufia Egypt
Nuclear Materials Authority P.O. Box 530, El Maddi Cairo Egypt.
RSC Adv. 2023 Oct 10;13(42):29735-29748. doi: 10.1039/d3ra04451c. eCollection 2023 Oct 4.
The objective of this study was to assess the efficacy of fungal chitosan-polystyrene-Co-nanocomposites (FCPNC) as a material for the adsorptive removal of cadmium (Cd) ions from aqueous solutions. The synthesis and characterization of FCPNC were accomplished using various analytical techniques, including Fourier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), Brunauer-Emmett-Teller (BET) analysis, and dynamic light scattering (DLS). The effectiveness of this adsorbent in removing Cd(ii) species from solution matrices was systematically investigated, resulting in the achievement of a maximum adsorption capacity of approximately 112.36 mg g. This high adsorption capacity was detected using the following operational parameters: solution pH equals 5.0, 60 min as a contact time between the adsorbent and Cd(ii) solution, Cd initial concentration of 50 ppm, adsorbent dosage of 0.5 g L and room temperature. The process of cadmium adsorption by FCPNC was found to follow the Langmuir isotherm model, suggesting that a chemical reaction occurs on the biosorbent surface. Kinetic studies have demonstrated that the cadmium removal process aligns well with the pseudo-second-order model. The thermodynamic analysis revealed the following values: Δ° = 25.89 kJ mol, Δ° = -21.58 kJ mol, and Δ° = 159.30 J mol K. These values indicate that the sorption process is endothermic, spontaneous, and feasible. These findings suggest the potential of FCPNC as an exceptionally effective biosorbent for the removal of water contaminants.
本研究的目的是评估真菌壳聚糖 - 聚苯乙烯 - 钴纳米复合材料(FCPNC)作为从水溶液中吸附去除镉(Cd)离子材料的功效。使用各种分析技术完成了FCPNC的合成与表征,包括傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)、布鲁诺尔 - 埃米特 - 特勒(BET)分析和动态光散射(DLS)。系统研究了这种吸附剂从溶液基质中去除Cd(ii)物种的有效性,实现了约112.36 mg g的最大吸附容量。使用以下操作参数检测到这种高吸附容量:溶液pH值等于5.0,吸附剂与Cd(ii)溶液的接触时间为60分钟,Cd初始浓度为50 ppm,吸附剂用量为0.5 g L,以及室温。发现FCPNC吸附镉的过程遵循朗缪尔等温线模型,表明在生物吸附剂表面发生了化学反应。动力学研究表明,镉去除过程与准二级模型吻合良好。热力学分析得出以下值:Δ° = 25.89 kJ mol,Δ° = -21.58 kJ mol,以及Δ° = 159.30 J mol K。这些值表明吸附过程是吸热的、自发的且可行的。这些发现表明FCPNC作为去除水中污染物的一种极其有效的生物吸附剂具有潜力。