Phytoremediation of Heavy-Metal-Contaminated Soils: Capacity of Amaranth Plants to Extract Cadmium from Nutrient-Poor, Acidic Substrates
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Growing Conditions
2.2. Sample Analysis
2.3. Calculations and Data Analysis
3. Results
Bioaccumulation Factor (BAF)
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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pH (H2O) | 5.6 |
---|---|
Organic Matter | 4.1% |
Sand | 70% |
Silt | 22% |
Clay | 4% |
Electrical Conductivity | 23 mS/m |
N (NO3 + NO2) | 0.12 mg kg−1 dw |
P-AL | 0.14 mg kg−1 dw |
K-AL | 0.73 mg kg−1 dw |
Mg-AL | 0.86 mg kg−1 dw |
Ca-AL | 7.7 mg kg−1 dw |
Cd (total) | 0.01 mg kg−1 dw |
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Haller, H.; Pronoza, L.; Dyer, M.; Ahlgren, M.; Bergqvist, L.; Flores-Carmenate, G.; Jonsson, A. Phytoremediation of Heavy-Metal-Contaminated Soils: Capacity of Amaranth Plants to Extract Cadmium from Nutrient-Poor, Acidic Substrates. Challenges 2023, 14, 28. https://doi.org/10.3390/challe14020028
Haller H, Pronoza L, Dyer M, Ahlgren M, Bergqvist L, Flores-Carmenate G, Jonsson A. Phytoremediation of Heavy-Metal-Contaminated Soils: Capacity of Amaranth Plants to Extract Cadmium from Nutrient-Poor, Acidic Substrates. Challenges. 2023; 14(2):28. https://doi.org/10.3390/challe14020028
Chicago/Turabian StyleHaller, Henrik, Lesya Pronoza, Mark Dyer, Maya Ahlgren, Louise Bergqvist, Ginnette Flores-Carmenate, and Anders Jonsson. 2023. "Phytoremediation of Heavy-Metal-Contaminated Soils: Capacity of Amaranth Plants to Extract Cadmium from Nutrient-Poor, Acidic Substrates" Challenges 14, no. 2: 28. https://doi.org/10.3390/challe14020028
APA StyleHaller, H., Pronoza, L., Dyer, M., Ahlgren, M., Bergqvist, L., Flores-Carmenate, G., & Jonsson, A. (2023). Phytoremediation of Heavy-Metal-Contaminated Soils: Capacity of Amaranth Plants to Extract Cadmium from Nutrient-Poor, Acidic Substrates. Challenges, 14(2), 28. https://doi.org/10.3390/challe14020028