Adsorption and thermal degradation of Atenolol using carbon materials: Towards an advanced and sustainable drinking water treatment

被引:11
作者
Garcia-Rosero, Helena [1 ,2 ,5 ]
Romero-Cano, Luis A. [3 ]
Aguilar-Aguilar, Angelica [4 ]
Bailon-Garcia, Esther [1 ]
Carvalho, Ana P. [2 ]
Perez-Cadenas, Agustin F. [1 ]
Carrasco-Marin, Francisco [1 ]
机构
[1] Univ Granada, Fac Ciencias, Grp Invest Mat Carbon, Av Fuente Nueva S-N, Granada 18071, Spain
[2] Univ Lisbon, Fac Ciencias, Ctr Quim Estrutural, P-1749016 Lisbon, Portugal
[3] Univ Autonoma Guadalajara, Dept Ciencias Biotecnol & Ambientales, Grp Invest Mat & Fenomenos Superficie, Av Patria 1201, Zapopan 45129, Jalisco, Mexico
[4] Univ Autonoma San Luis Potosi, Fac Ciencias Quim, Ctr Invest & Estudios Posgrad, San Luis Potosi 78260, San Luis Potosi, Mexico
[5] Univ Llanos, Fac Ciencias Basicas & Ingn, Villavicencio, Colombia
关键词
Biocarbon; Biomass derived activated carbons; Atenolol adsorption; Water hardness; Thermal regeneration cycles; ACTIVATED CARBON; MELIA-AZEDARACH; SURFACE-CHEMISTRY; AQUEOUS-SOLUTIONS; PHARMACEUTICALS; REMOVAL; CONTAMINANTS; ENVIRONMENT;
D O I
10.1016/j.jwpe.2022.102987
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
With the aim to present an alternative material that can be used in adsorption/degradation processes to remove pharmaceutical pollutants present in water, a biocarbon was designed from Melia Azedarach stones. Material has a high surface area (1230 m2 g-1) with mainly oxygenated groups; these properties give it exceptional characteristics for removing Atenolol. To show the versatility of the material, the adsorption of Atenolol in different water matrices was tested: Ultrapure water (0 mg L-1 CaCO3), solution model (200 mg L-1 CaCO3), and tap water from Lisbon city (80 mg L-1 CaCO3). The pseudo-second-order model can well describe the adsorption kinetics; kinetic constants obtained were: 75.70, 46.18, and 42.58 g mmol h-1, respectively. The adsorption isotherms are correctly described by the Langmuir model, obtaining maximum adsorption capacities of 1.83, 2.00, and 1.81 mmol g-1, respectively. Physisorption phenomena carry out the adsorption mechanism (E < 1 kJ mol-1) between the atenolol molecule, positively charged, and the material's surface, negatively charged, forming a monolayer onto the material's surface. Once the material was saturated, its regeneration was studied by employing thermal treatment at 450 degrees C. Results show a decrease in the surface area after treatment, resulting in a loss of adsorption capacity (30 %). This procedure makes it possible to achieve repeat cycles of adsorptiondegradation until the adsorbent is completely exhausted. The results obtained show this new material as a promising adsorbent for wastewater treatment contaminated with pharmaceutical pollutants since it has higher adsorption capacities than those reported in the literature in different water matrices.
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页数:9
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