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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Energetics of Small Molecule and Water Complexation in Hydrophobic Calixarene Cavities
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Energetics of Small Molecule and Water Complexation in Hydrophobic Calixarene Cavities

机译:疏水杯芳烃腔中的小分子和水络合能

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Calixarenes grafted on silica are energetically uniform hosts that bind aromatic guests with 1:1 stoichiometry,as shown by binding energies that depend upon the calixarene upper rim composition but not on their grafted surface density (0.02-0.23 nm~(-2)).These materials are unique in maintaining a hydrophilic silica surface,as probed by H_2O physisorption measurements,while possessing a high density of hydrophobic binding sites that are orthogonal to the silica surface below them.The covalently enforced cone-shaped cavities and complete accessibility of these rigidly grafted calixarenes allow the first unambiguous measurements of the thermodynamics of guest interaction with the same calixarene cavities in aqueous solution and vapor phase.Similar to adsorption into nonpolar protein cavities,adsorption into these hydrophobic cavities from aqueous solution is enthalpy-driven,which is in contrast to entropy-driven adsorption into water-soluble hydrophobic hosts such as beta cyclodextrin.The adsorption thermodynamics of several substituted aromatics from vapor and liquid are compared by (i) describing guest chemical potentials relative to pure guest,which removes differences among guests because of aqueous solvation and van der Waals contacts in the pure condensed phase,and (ii) passivating residual guest binding sites on exposed silica,titrated by water during adsorption from aqueous solution,using inorganic salts before vapor adsorption.Adsorption isotherms depend only upon the saturation vapor pressure of each guest,indicating that guest binding from aqueous or vapor media is controlled by van der Waals contacts with hydrophobic calixarene cavities acting as covalently assembled condensation nuclei,without apparent contributions from CH-pi or other directional interactions.These data also provide the first direct quantification of free energies for interactions of water with the calixarene cavity interior.The calixarene-water interface is stabilized by approx 20 kJ/mol relative to the water-vapor interface,indicating that water significantly competes with the aromatic guests for adsorption at these ostensibly hydrophobic cavities.This result is useful for understanding models of water interactions with other concave hydrophobic surfaces,including those commonly observed within proteins.
机译:嫁接在硅石上的杯芳烃是能量均匀的主体,它们以1:1的化学计量比结合芳族客体,结合能取决于杯芳烃上缘组成,但不取决于其接枝表面密度(0.02-0.23 nm〜(-2))。通过H_2O物理吸附测量,这些材料在保持亲水性二氧化硅表面方面是独特的,同时具有高密度的疏水结合位点,这些位点垂直于其下方的二氧化硅表面。共价增强的锥形孔洞和这些孔洞的完全可及性接枝的杯芳烃允许对水溶液和气相中相同杯芳烃腔的客体相互作用的热力学进行第一个明确的测量。类似于吸附到非极性蛋白质腔中,从水溶液到这些疏水腔的吸附是焓驱动的,这是相反的熵驱动吸附到水溶性疏水主体(如β-环糊精)中通过(i)描述相对于纯客体的客体化学势来比较几种来自蒸气和液体的取代芳烃的吸附热力学,这消除了客体之间因纯冷凝相中的水溶剂化和范德华接触而产生的差异,以及(ii)使暴露的二氧化硅上的钝化残留客体结合位点钝化,在从水溶液中吸附过程中被水滴定,然后在蒸气吸附之前使用无机盐进行滴定。吸附等温线仅取决于每个客体的饱和蒸气压,表明客体与水或蒸气介质的结合受到控制van der Waals与疏水的杯芳烃腔体(作为共价组装的缩合核)接触而没有CH-pi或其他方向性相互作用的明显贡献。这些数据还提供了水与杯芳烃腔体内部相互作用时自由能的首次直接定量。 -水界面稳定在约20 kJ / mo l相对于水蒸气界面,表明水在这些表面上疏水的腔体上与芳香物显着竞争吸附。此结果对于理解水与其他凹形疏水表面(包括蛋白质中常见的表面)相互作用的模型很有用。

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