Biochar-impacted sulfur cycling affects methylmercury phytoavailability in soils under different redox conditions

  • Wang, Yongjie
  • Zhang, Yue
  • Ok, Yong Sik
  • Jiang, Tao
  • Liu, Peng
  • 외 4명
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33
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36

초록

Recently, there has been increasing interest in reducing methylmercury (MeHg) phytoavailability using biochar, although the underlying mechanisms are not fully understood. By combining lab-scale batch incubation with pot and field validations, we demonstrate that biochar-impacted sulfur cycling in soils and MeHg-soil binding play key roles in controlling MeHg phytoavailability. (1) Under anoxic conditions, biochar-associated sulfate and biochar-facilitated microbial sulfate reduction enhanced the production of reduced inorganic sulfur species as acid-volatile sulfide (AVS) in soils by 122%, facilitating MeHg binding with soils and thus reducing MeHg phytoavailability. (2) In contrast, under oxic conditions, the reduced inorganic sulfur was oxidized (resulting in a 68-91% decrease in AVS), which released soil-bound MeHg and increased MeHg phytoavailability. The proposed mechanisms could explain the distinct effects of biochar amendment on MeHg bioaccumulation observed under anoxic (10-88% lower in rice grains) and oxic conditions (48-84% higher in wheat grains). Our results dispute the commonly held assumption that reduced MeHg phytoavailability under biochar amendment can be primarily attributed to MeHg-biochar binding. Therefore, the potential increased risk of MeHg in oxic soils following biochar amendment should be evaluated in more detail.

키워드

MercuryRiceWheatBioavailabilitySoil remediationMERCURY METHYLATIONINORGANIC MERCURYACTIVATED CARBONLOW-COSTRICESULFATEWATERIMMOBILIZATIONACCUMULATIONREMEDIATION
제목
Biochar-impacted sulfur cycling affects methylmercury phytoavailability in soils under different redox conditions
저자
Wang, YongjieZhang, YueOk, Yong SikJiang, TaoLiu, PengShu, RuiWang, DingyongCao, XindeZhong, Huan
DOI
10.1016/j.jhazmat.2020.124397
발행일
2021-04-05
유형
Article
저널명
Journal of Hazardous Materials
407