| Literature DB >> 29435667 |
Tingting Fan1,2,3, Chengbao Li1, Juan Gao1, Dongmei Zhou1, Marcelo Eduardo Alves4, Yujun Wang5.
Abstract
BACKGROUND: The coexistence of Cd2+ and Zn2+ ions in nature has a significant influence on their environmental behaviors in soils and bioavailability for plants. While many studies have been done on the mutual toxicity of Cd2+ and Zn2+, few studies can be found in the literature focused on the interaction of Cd2+ and Zn2+ on soil clay fractions especially in terms of energy relationship.Entities:
Keywords: Cd2+; Combined pollution; Soil particles; Wien effect; Zn2+
Year: 2018 PMID: 29435667 PMCID: PMC5809630 DOI: 10.1186/s12932-018-0050-y
Source DB: PubMed Journal: Geochem Trans ISSN: 1467-4866 Impact factor: 4.737
Properties of the studied soil samples
| Location | Chinese soil type | US soil type | Depth (cm) | EC (μs cm−1) | pH | CEC (cmol kg−1) | OM (%) | DOC (mg L−1) | FeDCB (g kg−1) | Clay (%) |
|---|---|---|---|---|---|---|---|---|---|---|
| Liyang | Paddy soil | Inceptisols | 0–20 | 233.27 | 3.36 | 15.8 | 2.40 | 248 | 7.97 | N |
| Jianhu | Boggy soil | Histosols | 0–20 | 495.77 | 6.22 | 26.4 | 2.98 | 149.5 | 6.77 | 13.1 |
| Xuyi | Yellow drab soil | Ustalfs | 0–20 | 147.41 | 5.72 | 17.8 | 2.17 | 251.5 | 7.91 | 10.7 |
| Nanjing | Yellow brown soil | Haplic Luvisols | 0–20 | 51.07 | 5.77 | 16.2 | 1.08 | 197 | 8.68 | 13 |
Mineralogical composition of the clay fractions of the studied soils
| Soil | Montmorillonite | Vermiculite | Hydromica | Kaolinite | Chlorite | Quartz | Feldspar |
|---|---|---|---|---|---|---|---|
| % | |||||||
| Paddy soil | 4 | 4 | 18 | 31 | 31 | 12 | / |
| Boggy soil | 20 | 6 | 24 | 11 | 26 | 13 | / |
| Yellow brown soil | 0 | 12 | 25 | 19 | 29 | 14 | 1 |
| Yellow drab soil | 7 | 5 | 22 | 24 | 30 | 11 | 1 |
Fig. 1Negative and positive charge densities of clay fractions (< 2 μm) of the studied soils (a) paddy soil (Inceptisols) and boggy soil (Histosols) (b) yellow drab soil (Ustalfs) and yellow brown soil (Haplic Luvisols) as a function of pH
The contents of Cd2+ and Zn2+ in soil colloid particles and corresponding supernatant, the binding energies of Cd2+ and Zn2+ on different soil colloid particles at various ratio of Cd2+ and Zn2+, related parameters to calculate the binding energy
| Cd2+/Zn2+ | Soil type | EC0 (mS cm−1) | Metal in colloid particles (mmol kg−1) | ECiu (mS cm−1) | Metal in supernatant (mmol L−1) | ECi0 (mS cm−1) | △Gbi (kJ mol−1) | |||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Cd2+ | Zn2+ | Cd2+ | Zn2+ | Cd2+ | Zn2+ | Cd2+ | Zn2+ | Cd2+ | Zn2+ | |||
| 1:1 | Boggy soil | 0.0088 | 75.24 | 79.17 | 0.0813 | 0.0836 | 0.0126 | 0.0175 | 0.0037 | 0.0051 | 7.64 | 6.95 |
| Paddy soil | 0.0129 | 60.21 | 61.84 | 0.0650 | 0.0653 | 0.0445 | 0.0444 | 0.0065 | 0.0064 | 5.70 | 5.77 | |
| Yellow brown soil | 0.0079 | 62.68 | 64.03 | 0.0677 | 0.0676 | 0.0124 | 0.0117 | 0.0041 | 0.0038 | 6.95 | 7.15 | |
| Yellow drab soil | 0.0122 | 66.45 | 69.14 | 0.0718 | 0.0730 | 0.0835 | 0.0861 | 0.0061 | 0.0061 | 6.12 | 6.15 | |
| 1:3 | Boggy soil | 0.0125 | 42.91 | 127.56 | 0.0463 | 0.1347 | 0.0013 | 0.0064 | 0.0021 | 0.0104 | 7.66 | 6.35 |
| Paddy soil | 0.0128 | 33.74 | 92.28 | 0.0364 | 0.0974 | 0.0055 | 0.0182 | 0.0030 | 0.0098 | 6.17 | 5.70 | |
| Yellow brown soil | 0.0111 | 37.51 | 107.95 | 0.0405 | 0.1140 | 0.0076 | 0.0241 | 0.0027 | 0.0084 | 6.72 | 6.47 | |
| Yellow drab soil | 0.0141 | 39.37 | 113.31 | 0.0425 | 0.1197 | 0.0020 | 0.0086 | 0.0028 | 0.0113 | 6.78 | 5.84 | |
| 3:1 | Boggy soil | 0.0114 | 127.64 | 45.69 | 0.1379 | 0.0482 | 0.0074 | 0.0024 | 0.0087 | 0.0027 | 6.86 | 7.14 |
| Paddy soil | 0.0147 | 100.78 | 32.89 | 0.1088 | 0.0347 | 0.0148 | 0.0046 | 0.0113 | 0.0034 | 5.62 | 5.76 | |
| Yellow brown soil | 0.0153 | 112.25 | 37.92 | 0.1212 | 0.0400 | 0.0091 | 0.0025 | 0.0121 | 0.0032 | 5.72 | 6.23 | |
| Yellow drab soil | 0.0156 | 115.42 | 36.19 | 0.1247 | 0.0382 | 0.0123 | 0.0033 | 0.0124 | 0.0032 | 5.73 | 6.12 | |
Fig. 2Dependence on field strength of electrical conductivity of suspension (10 g L−1) of clay fractions (< 2 μm) of paddy soil (Inceptisols) (LY) (a), boggy soil (Histosols) (JH) (b), yellow brown soil (Haplic Luvisols) (NJ) (c) and yellow drab soil (Ustalfs) (XY) (d) saturated with different ratios of Cd2+–Zn2+ in deionized water
Fig. 3The binding energies of Cd2+ (a) and Zn2+ (b) on colloid particles of different soil types in single and combined systems
Fig. 4The linear relationship between the binding energy of Cd2+ or Zn2+ in the combined system with different Cd:Zn molar ratio and the DOC content in soil clay fractions
Fig. 5Mean free adsorption energies as function of field strength for suspension (10 g L−1) of clay fractions (< 2 μm) of paddy soil (Inceptisols) (LY) (a), boggy soil (Histosols) (JH) (b), yellow brown soil (Haplic Luvisols) (NJ) (c) and yellow drab soil (Ustalfs) (XY) (d) saturated with different ratios of Cd2+–Zn2+ in deionized water
Mean free adsorption energies of ions adsorbed in soil colloid particles with four soil types at field strength of 100, 150, 200, 250 kV cm−1
| Soil type | Ratio of Cd2+/Zn2+ | 100 | 150 | 200 | 250 |
|---|---|---|---|---|---|
| kV cm−1 | |||||
| Boggy soil | 1:1 | 1.18 | 2.09 | 3.14 | 3.84 |
| 1:3 | 0.57 | 1.33 | 2.17 | 2.93 | |
| 3:1 | 0.49 | 1.17 | 2.22 | 2.93 | |
| Cd2+ | 0.09 | 0.64 | 1.35 | 2.03 | |
| Zn2+ | 0.00 | 0.23 | 0.77 | 1.25 | |
| Paddy soil | 1:1 | 0.70 | 1.34 | 2.20 | 2.84 |
| 1:3 | 0.60 | 1.20 | 1.96 | 2.61 | |
| 3:1 | 0.26 | 0.82 | 1.51 | 2.15 | |
| Cd2+ | 0.82 | 1.48 | 2.37 | 3.01 | |
| Zn2+ | − 0.04 | 0.08 | 0.53 | 0.85 | |
| Yellow brown soil | 1:1 | 1.33 | 2.22 | 3.23 | 3.91 |
| 1:3 | 0.51 | 1.34 | 2.27 | 2.92 | |
| 3:1 | 0.06 | 0.78 | 1.59 | 2.20 | |
| Cd2+ | 1.50 | 2.42 | 3.45 | 4.12 | |
| Zn2+ | − 0.28 | 0.48 | 1.28 | 2.02 | |
| Yellow drab soil | 1:1 | 0.79 | 1.43 | 2.31 | 2.97 |
| 1:3 | 0.46 | 1.01 | 1.80 | 2.50 | |
| 3:1 | 0.35 | 0.89 | 1.64 | 2.21 | |
| Cd2+ | 0.74 | 1.44 | 2.31 | 2.97 | |
| Zn2+ | − 0.14 | 0.56 | 1.32 | 2.05 | |