4.7 Article

The key roles of Fe-bearing minerals on arsenic capture and speciation transformation during high-As bituminous coal combustion: Experimental and theoretical investigations

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 415, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.125610

关键词

Fly ashes; Arsenic retention; Speciation determination; Capture mechanisms; Coal-fired power plants

资金

  1. National Key Research and Development Project of China [2018YFB0605103]
  2. Chinese Postdoctoral Science Foundation [2019M662586]
  3. National Natural Science Foundation of China [41773099, 52006082]

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This study investigated the speciation of arsenic in fly ash derived from high-arsenic bituminous coal combustion, with a focus on the role of key ash components. Fe minerals were found to be crucial in capturing and oxidizing As3+ into solid phase, while magnetite enhanced arsenic enrichment in fly ash. Density functional theory suggested that the octahedral structure on Fe3O4 (111) surface may be strong active sites for arsenic adsorption. These findings have implications for developing effective techniques for arsenic removal.
The conversion of As vapor released from coal combustion to less hazardous solids is an important process to alleviate As pollution especially for high-As coal burning, but the roles of key ash components are still in debate. Here, we used multiple analytical methods across the micro to bulk scale and density functional theory to provide quantitative information on As speciation in fly ash and clarify the roles of ash components on As retention. Fly ash samples derived from the high-As bituminous coal-fired power plants showed a chemical composition of typical Class F fly ash. In-situ electron probe microanalysis (EPMA) was for the first time used to quantify and distinguish the inter-particle As distribution difference within coal fly ash. The spatial distribution of As was consistent with Fe, O, and sometimes with Ca. Grain-scale distribution of As in coal fly ash was quantified and As concentrations in single ash particles followed the order of Fe-oxides > aluminosilicates > unburned carbon > quartz. Sequential extraction and Wagner chemical plot of As confirmed that Fe minerals rather than Al-/Cabearing minerals played a vital role in capturing and oxidizing As3+ into solid phase (As5+). Magnetite content in fly ash well-correlated with the increase ratio of As before and after magnetic separation, suggesting magnetite enhanced As enrichment in fly ash. Density functional theory (DFT) indicated that the bridges O sites of octahedral structure on Fe3O4 (111) surface were likely strong active sites for As2O3 adsorption. This study highlights the importance of magnetite on As transformation during bituminous or high-rank coal combustion in power plants and has great implications for developing effective techniques for As removal.

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