Mechanism, behaviour and application of iron nitrate modified carbon nanotube composites for the adsorption of arsenic in aqueous solutions
Full Length Article|Updated:2026-01-06
|
Mechanism, behaviour and application of iron nitrate modified carbon nanotube composites for the adsorption of arsenic in aqueous solutions
Chinese Journal of Chemical EngineeringVol. 60, Issue 8, Pages: 26-36(2023)
Affiliations:
1. Faculty of Environmental Science and Engineering, Kunming University of Science and Technology,Kunming,China,650500
2. National Regional Engineering Research Center-NCW,Kunming,China,650500
Author bio:
Funds:
DOI:
CLC:
Published:2023
Accepted:
Scan QR Code
Yingli Li, Zhishuncheng Li, Guangfei Qu, Rui Li, Shuaiyu Liang, Junhong Zhou, Wei Ji, Huiming Tang. Mechanism, behaviour and application of iron nitrate modified carbon nanotube composites for the adsorption of arsenic in aqueous solutions[J]. Chinese Journal of Chemical Engineering, 2023, 60(8): 26-36.
DOI:
Yingli Li, Zhishuncheng Li, Guangfei Qu, Rui Li, Shuaiyu Liang, Junhong Zhou, Wei Ji, Huiming Tang. Mechanism, behaviour and application of iron nitrate modified carbon nanotube composites for the adsorption of arsenic in aqueous solutions[J]. Chinese Journal of Chemical Engineering, 2023, 60(8): 26-36.DOI:
Mechanism, behaviour and application of iron nitrate modified carbon nanotube composites for the adsorption of arsenic in aqueous solutions
摘要
Abstract
In this study
ferric nitrate modified carbon nanotube composites (FCNT) were prepared by isovolumetric impregnation using carbon nanotubes (CNTs) as the carrier and ferric nitrates the active agent. The batch experiments showed that FCNT could effectively oxidize As(III) to As(V) and react with it to form stable iron arsenate precipitates. When the dosage of FCNT was 0.1 g·L
-1
pH value was 5-6
reaction temperature was 35 ℃ and reaction time was 2 h
the best arsenic removal effect could be achieved
and the removal rate of As(V) could reach 99.1%
which was always higher than 90% under acidic conditions. The adsorption results of FCNT were found to be consistent with Langmuir adsorption by static adsorption isotherm fitting
and the maximum adsorption capacity reached 118.3 mg·g
-1
. The material phase and property analysis by scanning electron microscopy
Brunauer-Emmett-Teller
Fourier transform infrared spectoscopy
X-ray photoelectron spectroscopy and other characterization methods
as well as adsorption isotherm modeling
were used to explore the adsorption mechanism of FCNT on arsenic. It was found that FCNT has microporous structure and nanostructure
and iron nanoparticles are loosely distributed on CNTs
which makes the material have good oxidation
adsorption and magnetic separation properties. Arsenic migrates on the surface of FCNT composites is mainly removed by forming insoluble compounds and co-precipitation. All the results show that FCNT treats arsenic at low cost with high adsorption efficiency
and the results also provide the experimental data basis and theoretical basis for arsenic contamination in groundwater.
关键词
Keywords
references
The trial reading is over, you can activate your VIP account to continue reading.
Non-linear modeling of kinetic and equilibrium data for the adsorption of hexavalent chromium by carbon nanomaterials: Dimension and functionalization
COS generation behavior during desulfurization for H2S over zeolite in simulated blast furnace gas
Ultra-efficient selective removal of 99TcO4-/ReO4- via self-polymerizing cationic organic polymer: Adsorption performance and mechanistic insight
Synthesis of ZSM-5 zeolite from desiliconization solution of coal fly ash and adsorption properties of Pb2+ containing wastewater
Synergistic pre-impregnation and templating strategy for constructing seaweed-based porous biochar with highly efficient Hg2+ adsorption performance
Related Author
Miguel de la Luz-Asunción
Eduardo E. Pérez-Ramírez
Ana L. Martínez-Hernández
Victor M. Castano
Víctor Sánchez-Mendieta
Carlos Velasco-Santos
Guo Yan
Hou Tuanyuan
Related Institution
Facultad de Química, Universidad Autónoma del Estado de México, Km. 12 de la carretera Toluca-Atlacomulco, C. P. 50200, San Cayetano, Toluca, Estado de México
Tecnológico Nacional de México-Instituto Tecnológico de Querétaro, División de Estudios de Posgrado e Investigación, Av. Tecnológico s/n, esq. Gral. Mariano Escobedo, Col. Centro Histórico, C. P. Santiago de Querétaro76000, Querétaro
Centro de Física Aplicada y Tecnología Avanzada, Universidad Nacional Autónoma de México, Boulevard Juriquilla 3001, Querétaro
State Key Laboratory of Clean and Efficient Coal Utilization, Taiyuan University of Technology
College of Chemistry and Chemical Engineering, Xinjiang Normal University