Department of Civil and Environmental Engineering, Lehigh University, Bethlehem, Pennsylvania 18015, United States.
Environ Sci Technol. 2012 Jul 3;46(13):7018-26. doi: 10.1021/es2039695. Epub 2012 Feb 23.
While a high efficiency of contaminant removal by nanoscale zerovalent iron (nZVI) has often been reported for several contaminants of great concern, including aqueous arsenic species, the transformations and translocation of contaminants at and within the nanoparticles are not clearly understood. By analysis using in situ time-dependent X-ray absorption spectroscopy (XAS) of the arsenic core level for nZVI in anoxic As(III) solutions, we have observed that As(III) species underwent two stages of transformation upon adsorption at the nZVI surface. The first stage corresponds to breaking of As-O bonds at the particle surface, and the second stage involves further reduction and diffusion of arsenic across the thin oxide layer enclosing the nanoparticles, which results in arsenic forming an intermetallic phase with the Fe(0) core. Extended X-ray absorption fine-structure (EXAFS) data from experiments conducted at different iron/arsenic ratios indicate that the reduced arsenic species tend to be enriched at the surface of the Fe(0) core region and had limited mobility into the interior of the metal core within the experimental time frame (up to 22 h). Therefore, there was an accumulation of partially reduced arsenic at the Fe(0)/oxide interface when a relatively large arsenic content was present in the solid phase. These results illuminate the role of intraparticle diffusion and reduction in affecting the chemical state and spatial distribution of arsenic in nZVI materials.
虽然纳米零价铁 (nZVI) 对包括水中砷物种在内的几种受关注污染物的去除效率通常很高,但污染物在纳米颗粒内外的转化和迁移仍不清楚。通过对缺氧 As(III)溶液中 nZVI 的砷芯能级进行原位时间相关 X 射线吸收光谱 (XAS) 分析,我们观察到 As(III)物种在 nZVI 表面吸附时经历了两个转化阶段。第一阶段对应于颗粒表面上 As-O 键的断裂,第二阶段涉及砷在包围纳米颗粒的薄氧化层内的进一步还原和扩散,这导致砷与 Fe(0)核形成金属间相。在不同铁/砷比下进行的实验的扩展 X 射线吸收精细结构 (EXAFS) 数据表明,还原的砷物种倾向于在 Fe(0)核区域的表面富集,并且在实验时间范围内(长达 22 小时)进入金属核内部的迁移能力有限。因此,当固相中存在相对大量的砷时,部分还原的砷在 Fe(0)/氧化物界面处积累。这些结果阐明了颗粒内扩散和还原在影响 nZVI 材料中砷的化学状态和空间分布方面的作用。