| Literature DB >> 26792640 |
Huihui Du1,2, Wenli Chen1, Peng Cai1,2, Xingmin Rong1,2, Ke Dai1,2, Caroline L Peacock3, Qiaoyun Huang1,2.
Abstract
Soil components (e.g., clays, bacteria and humic substances) are known to produce mineral-organic composites in natural systems. Herein, batch sorption isotherms, isothermal titration calorimetry (ITC), and Cd K-edge EXAFS spectroscopy were applied to investigate the binding characteristics of Cd on montmorillonite(Mont)-humic acid(HA)-bacteria composites. Additive sorption and non-additive Cd(II) sorption behaviour is observed for the binary Mont-bacteria and ternary Mont-HA-bacteria composite, respectively. Specifically, in the ternary composite, the coexistence of HA and bacteria inhibits Cd adsorption, suggesting a "blocking effect" between humic acid and bacterial cells. Large positive entropies (68.1~114.4 J/mol/K), and linear combination fitting of the EXAFS spectra for Cd adsorbed onto Mont-bacteria and Mont-HA-bacteria composites, demonstrate that Cd is mostly bound to bacterial surface functional groups by forming inner-sphere complexes. All our results together support the assertion that there is a degree of site masking in the ternary clay mineral-humic acid-bacteria composite. Because of this, in the ternary composite, Cd preferentially binds to the higher affinity components-i.e., the bacteria.Entities:
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Year: 2016 PMID: 26792640 PMCID: PMC4726142 DOI: 10.1038/srep19499
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Sorption isotherms of Cd (II) on montmorillonite (Mont), bacteria (P. p), Mont-P. p, Mont-HA, and Mont-HA-P. p composites in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C.
Langmuir parameters for the adsorption of Cd to defferent systems in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C.
| R2 | |||
|---|---|---|---|
| Mont | 73.5 | 0.0094 | 0.98 |
| Bacteria | 185.0 | 0.0267 | 0.99 |
| Mont-bacteria | 125.9 | 0.0201 | 0.99 |
| Mont-HA | 78.2 | 0.0154 | 0.96 |
| Mont-HA-bacteria | 87.2 | 0.0237 | 0.98 |
The mass ratio of each fraction in the binary and ternary composites is 1: 0.02: 1 for Mont: HA: bacteria (dry-weight basis).
aMaximum capacity of Cd adsorption on different components as predicted by Langmuir isotherm.
bEquilibrium constant related to the binding energy.
Figure 2The power-time curves for Cd (II) titration to montmorillonite (Mont), bacteria (P. p), Mont-P. p, Mont-HA, and Mont-HA-P. p composites in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C.
Thermodynamics parameters for the adsorption of Cd on different components in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C.
| K (L/mol) | Δ | Δ | Δ | R2 | |
|---|---|---|---|---|---|
| Mont | 0.010 | −5.8 | −10.2 | −14.7 | 0.995 |
| Bacteria | 0.025 | −9.2 | 24.9 | 114.4 | 0.987 |
| Mont-bacteria | 0.016 | −10.3 | 10.2 | 68.1 | 0.962 |
| Mont-HA | 0.012 | −11.06 | −8.1 | 9.8 | 0.952 |
| Mont-HA-bacteria | 0.020 | −9.8 | 20.2 | 99.6 | 0.974 |
Figure 3(a) k3-Weighted normalized Cd K-edge EXAFS spectra for montmorillonite (Mont), bacteria (P. p) and HA after adsorbing Cd in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C. (b) Normalized Cd K-edge k-weighted EXAFS spectra of Mont-bacteria, Mont-HA and Mont-HA-bacteria composites after adsorbing Cd in the presence of 0.01 mol/L KNO3 at pH 5 and 28 °C. Dotted lines (red) display the best 2-component or 3-component linear combination fitting of the reference spectra. The fitting results are displayed in Table 3.
Summary of the percentage contribution of different components for Cd binding in the binary Mont-bacteria, Mont-HA and ternary Mont-HA-bacteria composites using best fit linear combination analysis for the different composites (chi (k) = 2.3–10 Å−1).
| Composites | End-member for LCF | ||||
|---|---|---|---|---|---|
| Mont % | HA % | Bacteria % | Total % | ||
| Mont-bacteria | 32 (2.1) | 68 (2.1) | 100 | 0.1 | |
| Mont-HA | 83 (2.8) | 17 (2.8) | 100 | 0.03 | |
| Mont-HA-bacteria | 21 (2.3) | 3 (1) | 76 (2.3) | 100 | 0.04 |