Trivalent antimony removal using carbonaceous nanomaterial loaded with zero-valent bimetal (iron/copper) and their effect on seed growth

生物炭 吸附 双金属 零价铁 化学 纳米材料 无机化学 核化学 材料科学 有机化学 热解 纳米技术 物理化学
作者
Jianghao Ji,Siqin Xu,Zhiqiang Ma,Yizhen Mou
出处
期刊:Chemosphere [Elsevier BV]
卷期号:296: 134047-134047 被引量:47
标识
DOI:10.1016/j.chemosphere.2022.134047
摘要

As rapid industrial and social growth, antimony mines are the overexploited, leading to the accumulation of trivalent antimony in the aquatic environment near smelters, which harm human health. To eradicate trivalent antimony from water, an innovative nanomaterial in the form of sludge biochar loaded with zero-valent bimetal was synthesized using a liquid-phase reduction method. The adsorption performance of the nanomaterial for trivalent antimony was investigated based on a series of adsorption experiments using sludge biochar, nano zero-valent iron biochar, and nano zero-valent bimetal biochar. The results showed that the optimal adsorption performance of the three nanomaterials for trivalent antimony, considering the economic practicability, was highlighted at solution pH of 3 and 0.05 g of nanomaterial. Additionally, the maximum adsorption capacity of sludge biochar, nano zero-valent iron biochar, and nano zero-valent bimetal biochar is 3.89 mg g −1 at 35 °C, 32.01 mg g −1 at 25 °C, 50.96 mg g −1 at 25 °C, respectively. The adsorption process of sludge biochar is endothermic, resulting in an increase in the adsorption capacity with increasing temperature, whereas the exothermic reaction contributes to decrease in the adsorption capacity at increasing temperature for the other two carbon nanomaterials. The inhibitory effect of coexisting ions was in the order: Al 3+ > NH 4 + > Na + > K + ; CO 3 2− > CH 3 COO − > H 2 PO 4 − > S 2− . Additionally, nanomaterials promoted seed germination and growth. Investigation of the adsorption mechanism using X-ray photoelectron spectroscopy showed that trivalent antimony was oxidised to pentavalent antimony, and Fe(III) was reduced to Fe(II). The formed primary battery formed by copper ions and iron acclerated electron transfer and improved the adsorption rate. This implied that trivalent antimony could be removed through the synergistic action of the adsorption behaviour and redox reaction. Therefore, the biochar loaded with the zero-valent bimetal serves as a pathway for eradicating trivalent antimony. • Novel nanoadsorbent was prepared and applied to remove Sb(III) for the first time. • The maximum adsorption capacity of novel adsorbent is 50.96 mg g −1 at pH = 3, 298K. • Formed primary battery accelerated electron transfer and improved adsorption rate. • Sb(III) removed by synergistic effect of adsorption and redox reaction of nZVI-SBC.
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