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首页> 外文期刊>Journal of Polymer Science, Part A. Polymer Chemistry >Liquid chromatography of macromolecules at the critical adsorption point. II. Role of column packing: Bare silica gel
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Liquid chromatography of macromolecules at the critical adsorption point. II. Role of column packing: Bare silica gel

机译:大分子在临界吸附点的液相色谱。二。柱填料的作用:裸硅胶

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Liquid chromatography of macromolecules at the critical adsorption point (LC CAP) presents a potentially very powerful method for molecular characterization of complex polymers. However, LC CAP applicability is limited due to various experimental problems. The pore sizes and surface chemistry of the column packings belong to the most important weak points of the method. The LC CAP behavior of poly( methyl methacrylate)s was investigated using bare silica gels of 6, 12, and 100 nm pore sizes and with various amounts of surface silanols. Tetrahydrofuran as the adsorption suppressing liquid and toluene as the adsorption promoting liquid were mixed to form the "nearly critical" eluents. Both pore size and surface chemistry of silica were found to strongly influence the retentive characteristics of the system in the critical adsorption area. Macromolecules that were large enough to be excluded from the packing pores hardly followed the LC CAP rules: their retention volumes changed irregularly with the polymer molar mass and their recovery dropped sharply. The narrow pore silica gel-packed column governed the elution patterns of the whole column set composed of silica gels with different pore sizes. This makes the conventional LC CAP characterization of common polymers with broader molar mass distribution impractical and even not feasible. A hybrid column system was proposed containing narrow pore nonadsorptive column added in series to the meso-and macroporous LC CAP silica gels. This narrow pore column would allow separation of gas, impurities, and system peaks from the polymer peaks. The possible successive changes of the surface of silica gel, e.g., due to formation of silanols by hydrolysis or due to irreversible adsorption of some admixtures from the sample or eluent may make the LC CAF irrepeatable. Pronounced peak broadening was observed in the critical adsorption area and this effect increased strongly with the polymer molar mass. (C) 1998 John Wiley & Sons, Inc. [References: 21]
机译:大分子在临界吸附点(LC CAP)的液相色谱法提供了一种潜在的非常强大的方法,用于复杂聚合物的分子表征。但是,由于各种实验问题,LC CAP的适用性受到限制。柱填料的孔径和表面化学性质是该方法最重要的弱点。使用孔径为6、12和100 nm的裸露硅胶以及各种表面硅烷醇,研究了聚甲基丙烯酸甲酯的LC CAP行为。将四氢呋喃作为吸附抑制液体与甲苯作为吸附促进液体混合,以形成“近临界”洗脱液。发现二氧化硅的孔径和表面化学都强烈影响系统在临界吸附区域的保持特性。足够大以至于不能从填充孔中排除的大分子几乎不遵循LC CAP规则:其保留体积随聚合物摩尔质量而无规律地变化,并且其回收率急剧下降。窄孔硅胶填充柱控制着由具有不同孔径的硅胶组成的整个色谱柱组的洗脱模式。这使得常规的具有较宽摩尔质量分布的普通聚合物的LC CAP表征不切实际,甚至不可行。提出了一种杂化柱系统,该系统包含串联添加到中孔和大孔LC CAP硅胶中的窄孔非吸附柱。这种窄孔色谱柱可将气体,杂质和系统峰与聚合物峰分离。硅胶表面可能的连续变化,例如,由于水解形成硅烷醇或由于样品或洗脱液中某些混合物的不可逆吸附,可能使LC CAF不可重复。在临界吸附区域观察到明显的峰展宽,并且该效果随着聚合物摩尔质量的增加而大大增加。 (C)1998 John Wiley&Sons,Inc. [参考:21]

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