Mitigating Negative Microbial Effects of p-Nitrophenol, Phenol, Copper and Cadmium in a Sandy Loam Soil Using Biochar

被引:0
作者
C. Watson
K. Bahadur
L. Briess
M. Dussling
F. Kohler
S. Weinsheimer
F. Wichern
机构
[1] Rhine-Waal University of Applied Sciences,Faculty of Life Sciences
来源
Water, Air, & Soil Pollution | 2017年 / 228卷
关键词
Biochar; -Nitrophenol; Phenol; Copper; Cadmium; Soil microbial biomass; Soil microbial respiration;
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中图分类号
学科分类号
摘要
Biochars are adsorptive solids potentially of benefit to soil microbes by providing improved nutrient retention, a carbon substrate and contaminant adsorption. A 28-day incubation experiment gauged the interactive effects of biochar application and contaminants on the microbial biomass and respiration of a sandy loam soil. Soil was amended with 250 mg/kg phenol or p-nitrophenol (two toxic but nevertheless biodegradable organic contaminants) or 50 mg/kg cadmium or copper. Biochar application generally caused increased microbial respiration and biomass relative to non-amended controls. Of the heavy metal-amended soils, Cu effected significant reductions in microbial biomass carbon and basal respiration, which were improved with concurrent biochar amendment. The biochar’s functional groups are likely to have mitigated the metals’ negative effects via complexation and sorption, while the soil’s proportion of negative pH-dependent sites was increased by the pH rise induced by biochar application, allowing more cationic retention. Organic contaminant-spiked soils had higher microbial biomass-specific respiration without biochar amendment, indicating that surviving microbes utilised the compounds and necromass as substrates. Paranitrophenol proved to be particularly toxic without biochar application, causing marked reductions in the microbial quotient and biomass carbon. Remarkably, concurrent biochar and pNP application led to hugely increased microbial biomass carbon and nitrogen, significantly higher than those in contaminant-free replicates. It is likely this arose from biochar sorbing the contaminant and allowing its microbial utilisation as a carbon and nitrogen source, stimulating growth. Biochar application is a highly promising strategy for reducing the soil microbial toxicity of heavy metals and aromatic organic contaminants, particularly p-nitrophenol.
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  • [1] Ahmad M(2014)Biochar as a sorbent for contaminant management in soil and water: a review Chemosphere 99 19-33
  • [2] Ok YS(2016)Lead and copper immobilization in a shooting range soil using soybean stover- and pine needle-derived biochars: chemical, microbial and spectroscopic assessments Journal of Hazardous Materials 301 179-186
  • [3] Rajapaksha AU(2013)Interactions between biochar stability and soil organisms: review and research needs European Journal of Soil Science 64 379-390
  • [4] Lim JE(2014)Bacterial degradation of nitrophenols and their derivatives Journal of Hazardous Materials 266 42-59
  • [5] Zhang M(2014)An incubation study on the stability and biological effects of pyrogenic and hydrothermal biochar in two soils European Journal of Soil Science 65 72-82
  • [6] Bolan N(2010)Effects of biochar and greenwaste compost amendments on mobility, bioavailability and toxicity of inorganic and organic contaminants in a multi-element polluted soil Environmental Pollution 158 2282-2287
  • [7] Mohan D(2011)A review of biochars’ potential role in the remediation, revegetation and restoration of contaminated soils Environmental Pollution 159 3269-3282
  • [8] Vithanage M(1985)Chloroform fumigation and the release of soil nitrogen: a rapid direct extraction method to measure microbial biomass nitrogen in soil Soil Biology & Biochemistry 17 837-842
  • [9] Lee SS(2001)Different sources of heavy metals and their long-term effects on soil microbial properties Biology and Fertility of Soils 34 241-247
  • [10] Ok YS(1985)Phenol degradation by microorganisms adsorbed on activated carbon Applied Microbiology and Biotechnology 21 32-36