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Adsorption, recovery, and regeneration of Cd by magnetic phosphate nanoparticles

机译:CD通过磁性磷酸盐纳米粒子的吸附,回收和再生

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Adsorption plays an important role in removing cadmium (Cd2+) from water, and magnetic adsorbents are increasingly being used due to their ease of separation and recovery. Magnetic Fe3O4-coated hydroxyapatite (HAP) nanoparticles (nHAP-Fe3O4) were developed by co-precipitation and then used for the removal of Cd2+ from water. The properties of these nanoparticles were characterized by transmission electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, and magnetization curves. Experiments were conducted to investigate the effects of adsorption and mechanisms. Results illustrated that kinetic data were well fitted by a pseudo-second-order model. The adsorption capacity of nHAP-Fe3O4 was 62.14mg/g. The mechanisms for the adsorption of Cd2+ on nHAP-Fe3O4 included rapid surface adsorption, intraparticle diffusion, and internal particle bonding, with the ion exchange with Ca2+ and chemical complexation being the most dominant. The regeneration efficiency and recovery rate of nHAP-Fe3O4 eluted by EDTA-Na-2 after the fifth cycle were 63.04% and 40.2%, respectively. Results revealed that the feasibility of nHAP-Fe3O4 as an adsorbent of Cd2+ and its environmental friendliness make it an ideal focus for future research.
机译:吸附在除去水中的镉(CD2 +)中起着重要作用,并且由于它们的易于分离和回收而越来越多地使用磁性吸附剂。通过共沉淀开发磁Fe3O4涂覆的羟基磷灰石(HAP)纳米粉肽(NHAP-FE3O4),然后用于从水中除去CD2 +。通过透射电子显微镜,X射线衍射,傅里叶变换红外光谱和磁化曲线表征了这些纳米颗粒的性质。进行实验以研究吸附和机制的影响。结果说明了动力学数据通过伪二阶模型齐全。 NHAP-Fe3O4的吸附能力为62.14mg / g。在NHAP-Fe3O4上吸附CD2 +的机制包括快速表面吸附,椎间内扩散和内部颗粒键合,与CA2 +的离子交换和化学络合是最占优势的。第五次循环后EDTA-Na-2洗脱的NHAP-Fe3O4的再生效率和回收率分别为63.04%和40.2%。结果表明,NHAP-FE3O4作为CD2 +吸附剂的可行性及其环境友好使其成为未来研究的理想关注。

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