<p>Non-point-source pollution due to loss of phosphate (PO<sub>4</sub><sup>3-</sup>-P), nitrate (NO<sub>3</sub><sup>-</sup>-N), ammonium (NH<sub>4</sub><sup>+</sup>-N), zinc (Zn) and copper (Cu) from agricultural-lands receiving broiler-litter (BL) has been a serious concern. Although biochar application for reducing such pollution is considered ecofriendly, its efficacy is limited by low-functionality. An attempt was made to engineer biochar for immobilizing these anionic (PO<sub>4</sub><sup>3-</sup>-P, NO<sub>3</sub><sup>-</sup>-N) and cationic (NH<sub>4</sub><sup>+</sup>-N, Zn<sup>2+</sup>, Cu<sup>2+</sup>) non-point-source pollutants in BL-manured soils. Engineered-biochar (FeBC) was synthesized by oxidizing pine-wood derived biochar with HNO<sub>3</sub>-H<sub>2</sub>SO<sub>4</sub> followed by iron (FeCl<sub>3</sub>.6H<sub>2</sub>O) impregnation and characterized using microscopic (SEM) and spectral (XRD and FTIR) techniques. The efficacy of FeBC was compared with that of water-washed-biochar (WBC) and inorganic-amendments (alum and ferrous-sulfate) in reducing the solubility of these pollutants in the BL-mixed Marlboro and Decatur soils. For each soil-type, BL was first mixed with the soil (5% w/w) and the mixtures were further amended with ameliorants (FeBC, WBC, alum, ferrous-sulfate) to formulate eight treatment-combinations. The treatments were incubated at constant moisture and temperature for 0, 7, 21, and 42 days. After each incubation, soils were analysed for total-dissolved P (TDP), dissolved-reactive P (DRP), soluble NH<sub>4</sub><sup>+</sup>-N, NO<sub>3</sub><sup>-</sup>-N, Zn, and Cu content. Results indicated that iron-impregnation led to increased-functionality of biochar and magnetite (Fe<sub>3</sub>O<sub>4</sub>) coating on its surface. Among the ameliorants, engineered-biochar at 20% of applied-BL (FeBC2) could successfully immobilize all the studied anionic and cationic pollutants in BL-manured soils. Amending BL-mixed soils with FeBC2 resulted reduced-solubility of TDP (10.1-23.2%), DRP (8.82-18.7%), NH<sub>4</sub><sup>+</sup>-N (14.8-18.4%), NO<sub>3</sub><sup>-</sup>-N (3.14-12.2%), Cu (14.7-16.1%), and Zn (⁓20.9%) with respect to BL-mixed soils. Although inorganic amendments (alum and ferrous-sulfate) were highly effective in reducing the solubility of TDP (up to 79.1%), DRP (up to 90.0%), Zn (up to 71.5%) and Cu (up to 71.4%) in BL-manured soils; however, these amendments could not significantly reduce the solubility of NO<sub>3</sub><sup>-</sup>-N and NH<sub>4</sub><sup>+</sup>-N. The effectiveness of the WBC was the least. It could be inferred that the efficacy of FeBC was associated with its structural-attributes. Besides, Fe-induced immobilization of dissolved-organic-carbon (DOC) played important role in reducing Zn and Cu solubility in the BL-mixed soils amended with FeBC2. Engineered-biochar could be an effective amendment in immobilizing both the anionic and cationic pollutants in BL-treated soils.</p>

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Iron-impregnated Novel Biochar for Reducing the Solubility of Nitrogen, Phosphorus and Heavy Metals in Broiler Litter-manured Soils: Characterization, Effectiveness and Mechanism

  • Prasenjit Ray,
  • Debolina Chakraborty,
  • Rishi Prasad

摘要

Non-point-source pollution due to loss of phosphate (PO43--P), nitrate (NO3--N), ammonium (NH4+-N), zinc (Zn) and copper (Cu) from agricultural-lands receiving broiler-litter (BL) has been a serious concern. Although biochar application for reducing such pollution is considered ecofriendly, its efficacy is limited by low-functionality. An attempt was made to engineer biochar for immobilizing these anionic (PO43--P, NO3--N) and cationic (NH4+-N, Zn2+, Cu2+) non-point-source pollutants in BL-manured soils. Engineered-biochar (FeBC) was synthesized by oxidizing pine-wood derived biochar with HNO3-H2SO4 followed by iron (FeCl3.6H2O) impregnation and characterized using microscopic (SEM) and spectral (XRD and FTIR) techniques. The efficacy of FeBC was compared with that of water-washed-biochar (WBC) and inorganic-amendments (alum and ferrous-sulfate) in reducing the solubility of these pollutants in the BL-mixed Marlboro and Decatur soils. For each soil-type, BL was first mixed with the soil (5% w/w) and the mixtures were further amended with ameliorants (FeBC, WBC, alum, ferrous-sulfate) to formulate eight treatment-combinations. The treatments were incubated at constant moisture and temperature for 0, 7, 21, and 42 days. After each incubation, soils were analysed for total-dissolved P (TDP), dissolved-reactive P (DRP), soluble NH4+-N, NO3--N, Zn, and Cu content. Results indicated that iron-impregnation led to increased-functionality of biochar and magnetite (Fe3O4) coating on its surface. Among the ameliorants, engineered-biochar at 20% of applied-BL (FeBC2) could successfully immobilize all the studied anionic and cationic pollutants in BL-manured soils. Amending BL-mixed soils with FeBC2 resulted reduced-solubility of TDP (10.1-23.2%), DRP (8.82-18.7%), NH4+-N (14.8-18.4%), NO3--N (3.14-12.2%), Cu (14.7-16.1%), and Zn (⁓20.9%) with respect to BL-mixed soils. Although inorganic amendments (alum and ferrous-sulfate) were highly effective in reducing the solubility of TDP (up to 79.1%), DRP (up to 90.0%), Zn (up to 71.5%) and Cu (up to 71.4%) in BL-manured soils; however, these amendments could not significantly reduce the solubility of NO3--N and NH4+-N. The effectiveness of the WBC was the least. It could be inferred that the efficacy of FeBC was associated with its structural-attributes. Besides, Fe-induced immobilization of dissolved-organic-carbon (DOC) played important role in reducing Zn and Cu solubility in the BL-mixed soils amended with FeBC2. Engineered-biochar could be an effective amendment in immobilizing both the anionic and cationic pollutants in BL-treated soils.