Department of Bio and Nano Technology, Guru Jambheshwar University of Science and Technology, Hisar, Haryana, 125001, India.
Department of Bio and Nano Technology, Guru Jambheshwar University of Science and Technology, Hisar, Haryana, 125001, India; Department of Electronics and Communication Engineering, Guru Jambheshwar University of Science and Technology, Hisar, Haryana, 125001, India.
Environ Res. 2019 Jun;173:411-418. doi: 10.1016/j.envres.2019.03.061. Epub 2019 Mar 28.
Nowadays, the pollution in water resources has become a major concern, both environmentally and in perspective of human health. The bioaccumulation of pollutants, especially heavy metal ions through the food chain, poses a hazardous risk to humans and other living organisms. Nanomaterials and their composites have been recognized for their potential to resolve such problems. Herein, ZnO nanoparticles were synthesized and characterized via different microscopic/spectroscopic techniques. ZnO nanoparticles (i.e., 20 to 50 nm) were obtained in high yield via a facile chemical approach. The ratio of ZnO nanoparticles and activated carbon was optimized to achieve enhanced electrostatic interactions for the effective adsorption of cadmium ions (Cd). The adsorptive performance of the nanocomposite was further assessed in relation to several key parameters (e.g., contact time, solution pH, and adsorbent/adsorbate dosage). The nanocomposites (1 mg/ml) offered amaximum adsorption capacity of 96.2 mg/g for Cd ions as confirmed through adsorption isotherms for a best interpretation of the adsorption phenomenon. The favourable adsorption capacity of the synthesized ZnO/activated carbon (9:1) nanocomposites supported their use as an efficient sorbent material in practical performance metrics (e.g., partition coefficient of 0.54 mg gμM) for the adsorption of Cd ions.
如今,水资源污染已成为一个主要关注点,无论是从环境角度还是从人类健康角度来看都是如此。污染物,特别是重金属离子通过食物链的生物积累,对人类和其他生物构成了危险的风险。纳米材料及其复合材料因其解决此类问题的潜力而受到关注。在此,通过不同的微观/光谱技术合成并表征了 ZnO 纳米粒子。通过简单的化学方法以高产率获得了 ZnO 纳米粒子(即 20 至 50nm)。优化了 ZnO 纳米粒子和活性炭的比例,以实现增强的静电相互作用,从而有效吸附镉离子(Cd)。进一步根据几个关键参数(例如接触时间、溶液 pH 值和吸附剂/吸附质剂量)评估了纳米复合材料的吸附性能。纳米复合材料(1mg/ml)的最大吸附容量为 96.2mg/g,这是通过吸附等温线证实的,以更好地解释吸附现象。合成的 ZnO/活性炭(9:1)纳米复合材料具有良好的吸附能力,支持其在实际性能指标(例如 Cd 离子吸附的分配系数为 0.54mg gμM)中用作高效吸附剂材料。