Bio-oxidation of Elemental Mercury into Mercury Sulfide and Humic Acid-Bound Mercury by Sulfate Reduction for Hg 0 Removal in Flue Gas
作者:Zhenshan Huang, Zaishan Wei, Xiaoliang Xiao, Meiru Tang, Bailong Li, Song Ming, Xiang-Ling Cheng · 发表于:Environmental Science & Technology · 年份:2019 · DOI:10.1021/acs.est.9b04029 · 被引用次数:45 · 研究领域:Mercury impact and mitigation studies、Water Treatment and Disinfection、Melamine detection and toxicity
Bioconversion of elemental mercury (Hg 0 ) into immobile, nontoxic, and less bioavailable species is of vital environmental significance. Here, we investigated bioconversion of Hg 0 in a sulfate-reducing membrane biofilm reactor (MBfR). The MBfR achieved effective Hg 0 removal by sulfate bioreduction. 16 S rDNA sequencing and metagenomic sequencing revealed that diverse groups of mercury-oxidizing/sulfate-reducing bacteria ( Desulfobulbus, Desulfuromonas, Desulfomicrobium, etc.) utilized Hg 0 as the initial electron donor and sulfate as the terminal electron acceptor to form the overall redox. These microorganisms coupled Hg 0 bio-oxidation to sulfate bioreduction. Analysis on mercury speciation in biofilm by sequential extraction processes (SEPs) and inductively coupled mass spectrometry (ICP-MS) and by mercury temperature programmed desorption (Hg-TPD) showed that mercury sulfide (HgS) and humic acid-bound mercury (HA-Hg) were two major products of Hg 0 bio-oxidation. With HgS and HA-Hg comprehensively characterized by X-ray diffraction (XRD), excitation-emission matrix spectra (EEM), scanning electron microscopy-energy disperse spectroscopy (SEM-EDS), X-ray photoelectron spectroscopy (XPS), and Fourier transform infrared spectroscopy (FTIR), it was proposed that biologically oxidized mercury (Hg 2+ ) further reacted with biogenic sulfides to form cubically crystallized metacinnabar (β-HgS) extracellular particles. Hg 2+ was also complexed with functional groups −SH, −OH, −...