Zero-valent iron-manganese bimetallic nanocomposites catalyze hypochlorite for enhanced thallium(I) oxidation and removal from wastewater: Materials characterization, process optimization and removal mechanisms

吸附 化学 废水 零价铁 双金属片 次氯酸盐 无机化学 核化学 催化作用 有机化学 环境工程 工程类
作者
Yuting Li,Huosheng Li,Fengli Liu,Gaosheng Zhang,Yan-Hong Xu,Tangfu Xiao,Jianyou Long,Zexin Chen,Dandan Liao,Jiajun Zhang,Lianhua Lin,Ping Zhang
出处
期刊:Journal of Hazardous Materials [Elsevier]
卷期号:386: 121900-121900 被引量:69
标识
DOI:10.1016/j.jhazmat.2019.121900
摘要

Nano zero-valent metals adsorption coupled with advanced oxidation for environmental pollutants removal has been gaining attention recently. In this study, zero-valent iron-manganese (nZVIM) bimetallic nanocomposites were prepared via one-pot borohydride reduction and coupled with hypochlorite (ClO−) oxidation for enhanced thallium (Tl) removal from wastewater. Amorphous nZVIM nanoparticles were successfully synthesized, with a specific surface area of 106.89 m2/g, and a saturation magnetization of 65.16 emu/g. In comparison with the nZVIM adsorption or ClO− oxidation alone, the hybrid nZVIM/ClO− process achieved much faster Tl(I) removal rate over a wide pH range from 6 to 10. Maximum Tl(I) removal capacity was as high as 990.0 mg/g. The oxidation-induced adsorption for Tl(I) removal well followed the pseudo-first kinetic order model. Stable and effective adsorbent regeneration was achieved during the cyclic adsorption-desorption tests. This process also had high resistance to the interference of external cations, can act as an effective pretreatment for Tl(I) removal from the actual saline industrial wastewater. The main mechanisms for Tl(I) removal were found to be oxidation, surface precipitation, pore retention, and surface complexation. The nZVIM coupled with ClO− approach has great potential for Tl(I) removal from wastewater, and its application in other fields is highly anticipated.
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