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Interfacial behavior of polar, weakly polar, and nonpolar compounds bound to activated carbons

机译:与活性炭结合的极性,弱极性和非极性化合物的界面行为

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Detailed analysis of the interfacial behavior of water and weakly polar or nonpolar organics adsorbed alone or co-adsorbed onto activated carbons (AC) at different temperatures is a complex problem important for practical applications of adsorbents. Interaction of water, 1-decanol, and n-decane with AC possessing highly developed porosity (pore volume V_p≈1.4-2.3cm~3/g, specific surface area SBET≈1500-3500m~2/g) was studied over a broad temperature range using differential scanning calorimetry (DSC), thermoporometry, ~1H NMR spectroscopy, cryoporometry, and temperature-programmed desorption with mass-spectrometry control methods. Comparison of the pore size distributions (PSD) calculated using the DSC thermoporometry, NMR cryoporometry, and nitrogen adsorption isotherms allows us to determine localization of adsorbates in different pores, as well as changes in the PSD of AC due to freezing of adsorbates in pores. Theoretical calculations (using ab initio HF/6-31G(d,p), DFT B3LYP/6-31G(d,p), and PM7 methods) explain certain aspects of the interfacial behavior of water, decane, and decanol adsorbed onto AC that appear in the experimental data. Obtained results show strong temperature dependence (above and below the freezing point, T_f, of bulk liquids) of the interfacial behavior of adsorbates on the textural characteristics and hydrophilic/hydrophobic properties of AC and the adsorbate amounts that affect the distributions of adsorbates unfrozen at T
机译:对水和在不同温度下单独吸附或共吸附到活性炭(AC)上的弱极性或非极性有机物的界面行为的详细分析是一个复杂的问题,对吸附剂的实际应用很重要。研究了水,1-癸醇和正癸烷与具有高度发达的孔隙度(孔径V_p≈1.4-2.3cm〜3 / g,比表面积SBET≈1500-3500m〜2 / g)的AC的相互作用。使用差示扫描量热法(DSC),热孔隙率法,〜1H NMR光谱法,低温法和采用质谱控制方法的程序升温脱附方法测定温度范围。使用DSC热孔法,NMR低温法和氮吸附等温线计算得出的孔径分布(PSD)的比较使我们能够确定不同孔中吸附物的定位以及由于孔中吸附物冻结导致的AC PSD的变化。理论计算(使用从头开始的HF / 6-31G(d,p),DFT B3LYP / 6-31G(d,p)和PM7方法)解释了吸附在AC上的水,癸烷和癸醇的界面行为的某些方面出现在实验数据中。所得结果表明,吸附物的界面行为对AC的组织特性和亲水/疏水性能以及影响T处未冻结的吸附物分布的吸附量有很强的温度依赖性(散装液体的凝固点T_f上下)。

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