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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Physical properties and structure of fine core-shell particles used as packing materials for chromatography Relationships between particle characteristics and column performance
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Physical properties and structure of fine core-shell particles used as packing materials for chromatography Relationships between particle characteristics and column performance

机译:用作色谱填料的细核-壳颗粒的物理性质和结构颗粒特性与色谱柱性能之间的关系

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摘要

The recent development of new brands of packing materials made of fine porous-shell particles, e.g.. Halo and Kinetex, has brought great improvements in potential column efficiency, demanding considerable progress in the design of chromatographic instruments. Columns packed with Halo and Kinetex particles provide minimum values of their reduced plate heights of nearly 1.5 and 1.2, respectively. These packing materials have physical properties that set them apart from conventional porous particles. The kinetic performance of 4.6 mm I.D. columns packed with these two new materials is analyzed based on the results of a series of nine independent and complementary experiments: low-temperature nitrogen adsorption (LTNA), scanning electron microscopy (SEM), inverse size-exclusion chromatography (ISEC), Coulter counter particle size distributions, pycnometry, height equivalent to a theoretical plate (HETP), peak parking method (PP), total pore blocking method (TPB), and local electrochemical detection across the column exit section (LED). The results of this work establish links between the physical properties of these superficially porous particles and the excellent kinetic performance of columns packed with them. It clarifies the fundamental origin of the difference in the chromatographic performances of the Halo and the Kinetex columns. (C) 2010 Elsevier B.V. All rights reserved.
机译:由诸如Halo和Kinetex之类的细多孔壳颗粒制成的新包装材料品牌的最新发展,使潜在的柱效得到了极大的提高,要求色谱仪器的设计取得重大进展。装有Halo和Kinetex颗粒的色谱柱分别提供了其降低的板高的最小值,分别接近1.5和1.2。这些填充材料具有使它们与常规多孔颗粒不同的物理性能。内径4.6 mm的动力学性能根据一系列九个独立且互补的实验的结果,对填充有这两种新材料的色谱柱进行了分析:低温氮吸附(LTNA),扫描电子显微镜(SEM),逆尺寸排阻色谱(ISEC),库尔特计数器粒径分布,比重瓶,相当于理论塔板的高度(HETP),峰驻留方法(PP),总孔阻塞方法(TPB)和整个色谱柱出口部分的局部电化学检测(LED)。这项工作的结果建立了这些表面多孔颗粒的物理性能与填充它们的色谱柱的出色动力学性能之间的联系。它阐明了Halo和Kinetex色谱柱色谱性能差异的根本原因。 (C)2010 Elsevier B.V.保留所有权利。

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