| Literature DB >> 36199342 |
Boqing Liu1, Jingjing Cao2, Yong Jiang1, Shichang Yan1, Haiming He1, Yu Shi1, Songsong Xu1, Jinhua Liang3, Xiaoqian Ren1.
Abstract
Polycyclic aromatic hydrocarbons (PAHs) have received extensive attention due to being highly toxic, mutagenic, and carcinogenic organic pollutants. As a result, a series of adsorbents have been designed and developed to solve the problem. In this paper, CuZnFeAl-S has been explored as a highly efficient adsorbent for PAHs. First, CuZnFeAl-LDH was prepared using a coprecipitation method and then calcined at 500 °C to obtain CuZnFeAlO. Finally, CuZnFeAl-S was prepared by modifying CuZnFeAlO with sodium dodecyl sulfate (SDS). The physical and chemical properties of the adsorbents were characterized by XRD, N2 adsorption-desorption, SEM, ICP, FT-IR, TG-DSC, and IGC; subsequently their adsorption performance was investigated. The results show that the surface properties of CuZnFeAl-S changed from hydrophilic to hydrophobic after SDS modification, which enhanced the adsorption of PAHs obviously. The removal of naphthalene and phenanthrene on CuZnFeAl-S reached 97.3% and 90.3%, respectively. And the adsorption process of naphthalene and phenanthrene conforms to Langmuir adsorption and Freundlich adsorption, respectively. Besides, the adsorption thermodynamics indicate that the adsorption of PAHs was a spontaneous exothermic reaction. The highly efficient PAH adsorption performance of CuZnFeAl-S is the synergistic result of various molecule interactions, such as hydrogen bonding, π-π interactions, and electrostatic attraction. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 36199342 PMCID: PMC9460979 DOI: 10.1039/d2ra03968k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1XRD patterns of adsorbents.
Fig. 2SEM patterns of adsorbents. (a) CuZnFeAl–LDH (b) CuZnFeAlO (c) CuZnFeAl–S.
Fig. 3N2 adsorption–desorption isotherms of different adsorbents.
The specific surface area and element analysis of the adsorbenta
| Samples | (Cu/Zn/Fe/Al) molar ratios |
|
|
|---|---|---|---|
| CuZnFeAl–LDH | 15.15/60.50/12.21/12.14 | 91 | 0.46 |
| CuZnFeAlO | 14.86/61.49/11.89/11.76 | 125 | 0.87 |
| CuZnFeAl–S | 15.02/60.53/12.27/12.18 | 103 | 0.52 |
S BET-BET surface area, VT-total pore volume, P/P0 = 0.990.
Fig. 4FT-IR spectra of adsorbents.
γsd values of adsorption versus temperature
| γsd (mJ m−2) | 383.15 K | 373.15 K | 363.15 K | 353.15 K |
|---|---|---|---|---|
| CuZnFeAl–S | 15.87 | 19.38 | 24.85 | 29.50 |
| CuZnFeAlO | 28.43 | 31.31 | 32.25 | 35.69 |
| CuZnFeAl–LDH | 35.56 | 34.29 | 37.09 | 39.16 |
Fig. 5Changes of RT ln Vn on adsorbent surface with the number of carbon atoms contained in n-alkanes at different temperatures. (a) CuZnFeAl–S (b) CuZnFeAlO (c) CuZnFeAl–LDH.
Fig. 6TG-DSC patterns of adsorbents adsorbed before (a) CuZnFeAl–LDH (b) CuZnFeAlO (c) CuZnFeAl–S and adsorbed after (d) CuZnFeAl–LDH (e) CuZnFeAlO (f) CuZnFeAl–S.
Fig. 7The adsorption capacity of (a) naphthalene and (b) phenanthrene on adsorbents. Catalysts concentration: 0.8 g L−1, reaction temperature: 25 °C, pH = 6.8.
Fig. 8Different dosage of adsorption removal rate of (a) naphthalene and (b) phenanthrene. The effect of time on the adsorption capacity of naphthalene (c) and phenanthrene (d).
Fig. 9Pseudo-first-order dynamics model of (a) naphthalene and (b) phenanthrene on three adsorbents. (b) Adsorption isotherm of (c) naphthalene and (d) phenanthrene on CuZnFeAl–S.
Adsorption isotherm of naphthalene and phenanthrene
| Adsorbent | Naphthalene | Phenanthrene | ||
|---|---|---|---|---|
| Kinetic equation |
| Kinetic equation |
| |
| CuZnFeAl–LDH |
| 0.994 |
| 0.992 |
| CuZnFeAlO |
| 0.991 |
| 0.991 |
| CuZnFeAl–S |
| 0.990 |
| 0.981 |
Adsorption isotherm of naphthalene and phenanthrene
| Langmuir isotherm | Freundlich isotherm | |||||
|---|---|---|---|---|---|---|
|
|
|
|
|
|
| |
| Naphthalene | 23.55 | 1.25 | 0.996 | 12.15 | 2.45 | 0.992 |
| Phenanthrene | 25.36 | 0.77 | 0.993 | 10.61 | 2.13 | 0.997 |
Thermodynamic parameters of the adsorption process on CuZnFeAl–S at different temperatures
| PAHs |
| Δ | Δ | Δ |
|---|---|---|---|---|
| Naphthalene | 293 | −7.95 | −51.77 | −149.07 |
| 303 | −6.88 | |||
| 313 | −5.02 | |||
| 323 | −3.59 | |||
| Phenanthrene | 293 | −6.85 | −43.74 | −126.37 |
| 303 | −5.27 | |||
| 313 | −4.15 | |||
| 323 | −3.01 |