A Diffusive Gradient-in-Thin-Film Technique for Evaluation of the Bioavailability of Cd in Soil Contaminated with Cd and Pb
Abstract
:1. Introduction
2. Materials and Methods
2.1. DGT Assembly and Preparation
2.2. Soil Samples and Plants
2.3. Pot Experiment
2.4. DGT Experiments
- (1)
- Pretreatment of the soil sample: each soil sample (80 g) was weighed in a 100 mL plastic container and mixed with deionized water to 40% maximum water holding capacity (MWHC); 48 h later, water was added to achieve 80% MWHC and the resulting slurries were allowed to equilibrate at ambient temperature for 24 h before DGT deployment.
- (2)
- DGT deployment: the assembled DGT devices were gently placed on the soil surface of each pot for 24 h, but the gel films were not squeezed. The containers were closed, and Petri dishes with wet cellulose were placed in the containers to retain the soil moisture. Three replicates per pot were kept at 25 °C for 24 h.
- (3)
- DGT retrieval and elution: after 24 h, all of the DGT devices were retrieved and rinsed with deionized water. The binding gel layers were removed from the DGT units, placed in polyethylene vials, and eluted in 1 mL of 1 mol/L HNO3 for 24 h. The Cd concentration in the extractant was determined by flame atomic adsorption spectrophotometry (Z-81001, Hitachi, Hitachi, Japan).
- (4)
- DGT calculation: The concentrations of Cd accumulated by the DGT devices were calculated according to Equation (1):
2.5. Soil Solution Concentration
2.6. Single-Solvent Process
2.7. Determination of Cd in Plants
3. Results and Discussion
3.1. Wheat and Maize Growth Response to Cd and Pb
3.2. Cd Uptake by Plants
3.3. DGT Measurement and Soil Solution Concentration
3.4. Extractable-Cd Determined by Single Extraction Methods
3.5. Comparison of DGT with Chemical Extraction for Cd Bioavailability
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Extractant | Procedure | References |
---|---|---|
EDTA | 2.0 g of soil was extracted with 20 mL of 0.05 mol·L−1 EDTA adjusted using an ammonia solution to pH = 7.0 and shaken for 2 h | Feng et al. [30] |
HOAc | 0.5 g of soil was extracted with 20 mL of 0.11 mol·L−1 HOAc and shaken for 16 h (overnight) | Quevauviller [29] |
NaOAc | 4.0 g of soil was extracted with 20 mL of 1 mol·L−1 NaOAc and shaken for 2 h | Kaplan et al. [32] |
CaCl2 | 2.0 g of soil was extracted with 20 mL of 0.01 mol·L−1 CaCl2 and shaken for 3 h | Novozamsky et al. [31] |
Plant Species | Plant Tissues | CDGT | Csol | HOAc | EDTA | NaOAc | CaCl2 |
---|---|---|---|---|---|---|---|
Wheat | Shoot | 0.944 ** | 0.923 ** | 0.850 ** | 0.841 ** | 0.882 ** | 0.960 ** |
Root | 0.931 ** | 0.905 ** | 0.789 ** | 0.763 ** | 0.857 ** | 0.943 ** | |
Maize | Shoot | 0.994 ** | 0.971 ** | 0.899 ** | 0.900 ** | 0.891 ** | 0.925 ** |
Root | 0.915 ** | 0.968 ** | 0.874 ** | 0.829 ** | 0.801 ** | 0.901 ** |
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Wang, P.; Wang, T.; Yao, Y.; Wang, C.; Liu, C.; Yuan, Y. A Diffusive Gradient-in-Thin-Film Technique for Evaluation of the Bioavailability of Cd in Soil Contaminated with Cd and Pb. Int. J. Environ. Res. Public Health 2016, 13, 556. https://doi.org/10.3390/ijerph13060556
Wang P, Wang T, Yao Y, Wang C, Liu C, Yuan Y. A Diffusive Gradient-in-Thin-Film Technique for Evaluation of the Bioavailability of Cd in Soil Contaminated with Cd and Pb. International Journal of Environmental Research and Public Health. 2016; 13(6):556. https://doi.org/10.3390/ijerph13060556
Chicago/Turabian StyleWang, Peifang, Teng Wang, Yu Yao, Chao Wang, Cui Liu, and Ye Yuan. 2016. "A Diffusive Gradient-in-Thin-Film Technique for Evaluation of the Bioavailability of Cd in Soil Contaminated with Cd and Pb" International Journal of Environmental Research and Public Health 13, no. 6: 556. https://doi.org/10.3390/ijerph13060556
APA StyleWang, P., Wang, T., Yao, Y., Wang, C., Liu, C., & Yuan, Y. (2016). A Diffusive Gradient-in-Thin-Film Technique for Evaluation of the Bioavailability of Cd in Soil Contaminated with Cd and Pb. International Journal of Environmental Research and Public Health, 13(6), 556. https://doi.org/10.3390/ijerph13060556