纳米Al2O3|| - C复合材料对Cr(VI)、Mo(VI)、W(VI)、Se(IV)氧阴离子的吸附静力学

IF 0.9 Q4 CHEMISTRY, INORGANIC & NUCLEAR
Е. V. Polyakov, V. N. Krasilnikov, I. V. Volkov, A. A. Ioshin
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引用次数: 0

摘要

采用热力学模拟、吸附诊断、粒子ζ电位分析和紫外-可见光谱分析等方法,分析了Al2O3||C复合材料化学稳定区中CrO42 -、MoO42 -、WO42 -、SeO32 -氧阴离子吸附相互作用的平衡条件。对于单能吸附剂,阴离子吸附等温线符合Langmuir模型。浓度小于1 μM时,观察到Henry区。根据已建立的表面络合机理,在研究的pH范围内阴离子质子化常数(K1)的值决定了复合材料对这些阴离子的吸附活性。这解释了复合KM(1,2)的酸碱位参数{Al-O -}、{Al-HO0}和{Al-OH2 +}的比值与阴离子K1的质子化常数之间的相关性。结果表明,Al2O3 - | - | - C复合材料从d-、f-元素的阳离子和d-元素的氧阴离子中富集,其值为log Kd [mL/g] >;4,从而表现出集体作用吸附剂的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sorption Statics of Cr(VI), Mo(VI), W(VI), Se(IV) Oxygen Anions by Nanostructured Al2O3||C Composite

Sorption Statics of Cr(VI), Mo(VI), W(VI), Se(IV) Oxygen Anions by Nanostructured Al2O3||C Composite

By the methods of thermodynamic modeling, sorption diagnostics, analysis of particle zeta-potential, and UV-Vis spectrometry the equilibrium conditions of sorption interaction of CrO42–, MoO42–, WO42–, SeO32– oxygen anions in the region of chemical stability of Al2O3||C composite have been analyzed. The anion sorption isotherms are shown to follow the Langmuir model for a monoenergetic sorbent. The Henry region is observed at concentrations less than 1 μM. According to the established mechanism of surface complexation, the value of anions protonation constant (K1) in the investigated pH range determines the sorption activity of the composite to these anions. This explains the correlation found between the ratio of parameters of acid–base sites {Al–O}, {Al–HO0}, and {Al–OH2+} of composite KM(1,2) and the protonation constant of anion K1. It is shown that the Al2O3||C composite concentrates from dilute solutions both cations of d-, f-elements and oxygen anions of d-elements with the value of log Kd [mL/g] > 4, thereby exhibiting the properties of collective action sorbent.

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来源期刊
Radiochemistry
Radiochemistry CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
1.30
自引率
33.30%
发文量
51
期刊介绍: Radiochemistry  is a journal that covers the theoretical and applied aspects of radiochemistry, including basic nuclear physical properties of radionuclides; chemistry of radioactive elements and their compounds; the occurrence and behavior of natural and artificial radionuclides in the environment; nuclear fuel cycle; radiochemical analysis methods and devices; production and isolation of radionuclides, synthesis of labeled compounds, new applications of radioactive tracers; radiochemical aspects of nuclear medicine; radiation chemistry and after-effects of nuclear transformations.
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