Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems
Because of its priority to remove anions, nano-layered double hydroxide (LDH) was incorporated to improve the sulfate attack corrosion resistance of cement-based materials. Herein, the synthesis of high-efficiency LDH for removal of SO42−{\text{SO}}_{4}^{2-} is necessary. In this study, LDH with dif...
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doaj-66a6837f0ac44517841079a2888ef2502021-10-03T07:42:39ZengDe GruyterNanotechnology Reviews2191-90972021-04-0110111712510.1515/ntrev-2021-0012Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systemsLiu Xiaobo0Lu Shuang1Tang Zhen2Wang Zhaojia3Huang Tianyong4Heilongjiang Province Hydraulic Research Institute, 78 Yanxing Road, Nangang District, Harbin 150080, ChinaSchool of Civil Engineering, Harbin Institute of Technology, 150090, Harbin, ChinaSchool of Civil Engineering, Harbin Institute of Technology, 150090, Harbin, ChinaState Key Laboratory of Solid Waste Reuse for Building Materials, Beijing Building Materials Academy of Science Research, Beijing 100041, ChinaState Key Laboratory of Solid Waste Reuse for Building Materials, Beijing Building Materials Academy of Science Research, Beijing 100041, ChinaBecause of its priority to remove anions, nano-layered double hydroxide (LDH) was incorporated to improve the sulfate attack corrosion resistance of cement-based materials. Herein, the synthesis of high-efficiency LDH for removal of SO42−{\text{SO}}_{4}^{2-} is necessary. In this study, LDH with different Mg/Al ratios was synthesized under different dual solvent systems (water and ethylene glycol/ethanol/tetrapropylammonium hydroxide). Based on the adsorption experimental results, the LDH synthesized with n(Mg:Al) = 2:1 under water and ethanol solvent systems (ET2.0) exhibits the best adsorption capacity. The d (003) of LDH synthesized with n(Mg:Al) = 2:1 under different dual solvent systems are 0.7844, 0.7830, and 0.7946 nm, respectively. Three LDH belong to LDH-NO3−{\text{NO}}_{3}^{-}. The results indicated that their surface charges show obvious difference synthesized under different dual solvent systems, which leads to differences in adsorption performance. The adsorption experimental results show that ET2.0 followed pseudo second-order kinetics and Langmuir model. The ET2.0 removed SO42−{\text{SO}}_{4}^{2-} through anion substitution and electrostatic interaction and exhibited excellent adsorption rate with the maximum adsorption capacity of 95.639 mg/g. The effects of pore solution anion (OH−, Cl−, and CO32−{\text{CO}}_{3}^{2-}) on the removal of SO42−{\text{SO}}_{4}^{2-} by the ET2.0 are limited.https://doi.org/10.1515/ntrev-2021-0012ldhnano-layeradsorption capacitycorrosion resistance |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Liu Xiaobo Lu Shuang Tang Zhen Wang Zhaojia Huang Tianyong |
spellingShingle |
Liu Xiaobo Lu Shuang Tang Zhen Wang Zhaojia Huang Tianyong Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems Nanotechnology Reviews ldh nano-layer adsorption capacity corrosion resistance |
author_facet |
Liu Xiaobo Lu Shuang Tang Zhen Wang Zhaojia Huang Tianyong |
author_sort |
Liu Xiaobo |
title |
Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems |
title_short |
Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems |
title_full |
Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems |
title_fullStr |
Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems |
title_full_unstemmed |
Removal of sulfate from aqueous solution using Mg–Al nano-layered double hydroxides synthesized under different dual solvent systems |
title_sort |
removal of sulfate from aqueous solution using mg–al nano-layered double hydroxides synthesized under different dual solvent systems |
publisher |
De Gruyter |
series |
Nanotechnology Reviews |
issn |
2191-9097 |
publishDate |
2021-04-01 |
description |
Because of its priority to remove anions, nano-layered double hydroxide (LDH) was incorporated to improve the sulfate attack corrosion resistance of cement-based materials. Herein, the synthesis of high-efficiency LDH for removal of SO42−{\text{SO}}_{4}^{2-} is necessary. In this study, LDH with different Mg/Al ratios was synthesized under different dual solvent systems (water and ethylene glycol/ethanol/tetrapropylammonium hydroxide). Based on the adsorption experimental results, the LDH synthesized with n(Mg:Al) = 2:1 under water and ethanol solvent systems (ET2.0) exhibits the best adsorption capacity. The d
(003) of LDH synthesized with n(Mg:Al) = 2:1 under different dual solvent systems are 0.7844, 0.7830, and 0.7946 nm, respectively. Three LDH belong to LDH-NO3−{\text{NO}}_{3}^{-}. The results indicated that their surface charges show obvious difference synthesized under different dual solvent systems, which leads to differences in adsorption performance. The adsorption experimental results show that ET2.0 followed pseudo second-order kinetics and Langmuir model. The ET2.0 removed SO42−{\text{SO}}_{4}^{2-} through anion substitution and electrostatic interaction and exhibited excellent adsorption rate with the maximum adsorption capacity of 95.639 mg/g. The effects of pore solution anion (OH−, Cl−, and CO32−{\text{CO}}_{3}^{2-}) on the removal of SO42−{\text{SO}}_{4}^{2-} by the ET2.0 are limited. |
topic |
ldh nano-layer adsorption capacity corrosion resistance |
url |
https://doi.org/10.1515/ntrev-2021-0012 |
work_keys_str_mv |
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1716845961530048512 |