| Literature DB >> 35354834 |
Huajie Xu1, Bing Wang2,3, Ruohan Zhao4, Xiangui Wang1, Changbin Pan1, Yuting Jiang1, Xueyang Zhang5, Banggui Ge6.
Abstract
Sorghum has been widely used for liquor production and brewing, but how to make efficiently utilize sorghum straw (SS) has become an urgent problem. Meanwhile, the wastewater produced by winemaking is typical organic wastewater with a high ammonium concentration. To solve the problem of resource utilization of SS and remove ammonium from water, SS was used to prepare biochar as an adsorbent for ammonium adsorption. Batch adsorption experiments were carried out to study the influencing factors and adsorption mechanisms of ammonium onto sorghum straw biochar (SSB). The results showed that the adsorption capacity of SSB was much higher than that of SS. The SSB pyrolyzed at 300 °C had the highest adsorption capacity. The favorable pH was 6-10, and the optimal dosage was 2.5 g/L. The adsorption process and behavior conformed to the pseudo-second-order kinetic and Langmuir isotherm adsorption models. The maximum ammonium adsorption capacity of SSB at 45 °C was 7.09 mg/g, which was equivalent to 7.60 times of SS. The ammonium adsorption of SS and SSB was mainly chemical adsorption. The regeneration test indicated that SSB had good regeneration performance after three adsorption-regeneration cycles. This work suggests that SSB could be potentially applied to sewage treatment containing ammonium to achieve the purpose of resource recycling.Entities:
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Year: 2022 PMID: 35354834 PMCID: PMC8967861 DOI: 10.1038/s41598-022-08591-5
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Scanning electron micrograph of biochar at different carbonization temperatures.
The physicochemical properties of sorghum straw biochar.
| Biochars | Acidic oxygen-containing functional groups (mmol/g) | SSA (m2/g) | Total pore volume (cm3/g) | Average pore size (nm) | |||
|---|---|---|---|---|---|---|---|
| Carboxyl | Lactone group | Phenolic hydroxyl | Carbonyl | ||||
| SSB300 | 1.183 | 3.02 | 3.21 | 8.19 | 1.41 | 0.008 | 11.10 |
| SSB450 | 0.716 | 1.99 | 2.27 | 5.86 | 43.51 | 0.036 | 1.67 |
| SSB600 | 0.591 | 1.81 | 1.87 | 4.62 | 66.74 | 0.068 | 2.04 |
Figure 2Infrared spectra of sorghum straw and its biochar.
Figure 3The adsorption capacity of biochar and sorghum straw for ammonium at different carbonization temperatures.
Figure 4The effect of dosage on ammonium adsorption.
Figure 5The effect of pH on ammonium adsorption.
Figure 6Ammonium adsorption kinetics fitting curve.
Fitting parameters of ammonium adsorption kinetics.
| Adsorbents | Intraparticle diffusion model | Pseudo-first-order kinetic model | Pseudo-second-order kinetic model | ||||||
|---|---|---|---|---|---|---|---|---|---|
| C | k1 (mg·g−1·min−0.5) | R2 | qe (mg·g−1) | K2 min−1 | R2 | qe (mg·g−1) | K3 (mg·g−1·min−1) | R2 | |
| SSB300 | 0.9830 | 0.0786 | 0.8718 | 3.1786 | 0.0121 | 0.9218 | 3.5529 | 0.0042 | 0.9733 |
| SS | 0.1960 | 0.0059 | 0.8490 | 0.3416 | 0.0329 | 0.8758 | 0.3694 | 0.1208 | 0.9526 |
Figure 7The adsorption thermodynamic isotherm of ammonium (Freundlich).
Figure 8The adsorption thermodynamic isotherm of ammonium (Langmuir).
Isothermal adsorption fitting parameters of ammonium.
| Adsorbents | T(K) | Freundlich model | Langmuir model | |||||
|---|---|---|---|---|---|---|---|---|
| KF (L/mg) | 1/n | R2 | qm (mg/g) | KL (L/mg) | R2 | RL | ||
| SSB300 | 298 | 1.0553 | 0.3113 | 0.9541 | 6.7655 | 0.0207 | 0.9779 | 0.162 ~ 0.491 |
| 308 | 1.5630 | 0.2530 | 0.8979 | 6.9687 | 0.0284 | 0.9838 | 0.123 ~ 0.423 | |
| 318 | 1.8252 | 0.2306 | 0.8599 | 7.0930 | 0.0325 | 0.9699 | 0.110 ~ 0.381 | |
| SS | 298 | 0.0968 | 0.3431 | 0.9539 | 0.7817 | 0.0161 | 0.9608 | 0.199 ~ 0.544 |
| 308 | 0.1135 | 0.3234 | 0.9339 | 0.8068 | 0.0177 | 0.9458 | 0.184 ~ 0.531 | |
| 318 | 0.1703 | 0.2824 | 0.9295 | 0.9336 | 0.0218 | 0.9785 | 0.155 ~ 0.478 | |
A comparison of the adsorption capacities of other adsorbents for ammonium.
| Biochars | Adsorption capacity (mg/g) | References |
|---|---|---|
| Wood chips biochar | 0.96 | [ |
| Sludge biochar | 1.2 | [ |
| Bamboo biochar | 7.0 | [ |
| Coffee husk biochar | 2.8 | [ |
| Canna biochar | 5.6 | [ |
| Corn stalk biochar | 7.174 | [ |
| Sorghum straw biochar | 7.09 | This study |
The adsorption thermodynamic parameters of ammonium.
| Adsorbents | T(K) | Langmuir model | △Gθ (kJ/mol) | △Hθ (kJ/mol) | △Sθ (kJ/mol·K) | |
|---|---|---|---|---|---|---|
| KL (L/mg) | KLθ | |||||
| SSB300 | 298 | 0.0207 | 3067.8a | − 19.89 | − 24.03 | − 0.1417 |
| 308 | 0.0284 | 2025.4a | − 18.86 | |||
| 318 | 0.0325 | 1670.4a | − 18.39 | |||
| SS | 298 | 0.0161 | 2.98 × 105a | − 31.23 | − 26.76 | 0.1553 |
| 308 | 0.0177 | 2.54 × 105a | − 30.83 | |||
| 318 | 0.0218 | 1.50 × 105a | − 29.54 | |||
aWhen calculating the molar concentration of the adsorbent, the molecular weights of SS300 and SS were assumed to be the molecular weight of C (12 g/mol).
Figure 9Adsorption effect under different regeneration conditions.