School of Earth and Atmospheric Sciences, Georgia Institute of Technology , Atlanta, Georgia 30332-0340, United States.
Department of Physics and Texas Center for Superconductivity (TCSUH), University of Houston , Houston, Texas 77204, United States.
Environ Sci Technol. 2017 Mar 21;51(6):3223-3232. doi: 10.1021/acs.est.6b05408. Epub 2017 Mar 3.
The role of microbial activities on the transformation of chromium (Cr) remediation products has generally been overlooked. This study investigated the stability of Cr(III)-Fe(III)-(oxy)hydroxides, common Cr(VI) remediation products, with a range of compositions in the presence of common microbial exudates, siderophores and small organic acids. In the presence of a representative siderophore, desferrioxamine B (DFOB), iron (Fe) was released at higher rates and to greater extents relative to Cr from all solid phases. The presence of oxalate alone caused the release of Cr, but not of Fe, from all solid phases. In the presence of both DFOB and oxalate, oxalate acted synergistically with DFOB to increase the Fe, but not the Cr, release rate. Upon reaction with DFOB or DFOB + oxalate, the remaining solids became enriched in Cr relative to Fe. Such incongruent dissolution led to solid phases with different compositions and increased solubility relative to the initial solid phases. Thus, the presence of microbial exudates can promote the release of Cr(III) from remediation products via both ligand complexation and increased solid solubility. Understanding the potential reaction kinetics and pathways of Cr(VI) remediation products in the presence of microbial activities is necessary to assess their long-term stability.
微生物活动对铬(Cr)修复产物转化的作用通常被忽视。本研究调查了一系列组成的 Cr(III)-Fe(III)-(氧)氢氧化物,即常见的 Cr(VI)修复产物,在常见微生物分泌物、铁载体和小分子有机酸存在下的稳定性。在代表性铁载体去铁胺 B (DFOB)存在下,所有固相中 Fe 的释放速率和释放程度均高于 Cr。单独存在草酸盐会导致所有固相中 Cr 的释放,但不会导致 Fe 的释放。在 DFOB 和草酸盐同时存在的情况下,草酸盐与 DFOB 协同作用,增加了 Fe 的释放速率,但没有增加 Cr 的释放速率。与 DFOB 或 DFOB +草酸盐反应后,剩余的固体中 Cr 的含量相对于 Fe 增加。这种不相容的溶解导致固相的组成不同,且相对于初始固相的溶解度增加。因此,微生物分泌物的存在可以通过配体络合和增加固体溶解度来促进修复产物中 Cr(III)的释放。了解微生物活动存在下 Cr(VI)修复产物的潜在反应动力学和途径对于评估其长期稳定性是必要的。