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整体式硅胶棒柱用于高效反相液相色谱。

Monolithic silica rod columns for high-efficiency reversed-phase liquid chromatography.

机构信息

GL Sciences Inc., 237-2 Sayamagahara, Iruma, Saitama 358-0032, Japan.

出版信息

J Chromatogr A. 2011 Apr 15;1218(15):1988-94. doi: 10.1016/j.chroma.2010.11.032. Epub 2010 Dec 2.

Abstract

Chromatographic properties of a new type of monolithic silica rod columns were examined. Silica rod columns employed for the study were prepared from tetramethoxysilane, modified with octadecylsilyl moieties, and encased in a stainless-steel protective column with two polymer layers between the silica and the stainless-steel tubing. A 25 cm column provided up to 45,000 theoretical plates for aromatic hydrocarbons, or a minimum plate height of about 5.5 μm, at optimum linear velocity of ca. 2.3 mm/s and back pressure of 7.5 MPa in an acetonitrile-water (80/20, v/v) mobile phase at 40°C. The permeability of the column was similar to that of a column packed with 5 μm particles, with K(F) about 2.4×10(-14) m(2) (based on the superficial linear velocity of the mobile phase), while the plate height value equivalent to that of a column packed with 2.5 μm particles. Generation of 80,000-120,000 theoretical plates was feasible with back pressure below 30 MPa by employing two or three 25 cm columns connected in series. The use of the long columns enabled facile generation of large numbers of theoretical plates in comparison with conventional monolithic silica columns or particulate columns. Kinetic plot analysis indicates that the monolithic columns operated at 30 MPa can provide faster separations than a column packed with totally porous 3-μm particles operated at 40 MPa in a range where the number of theoretical plates (N) is greater than 50,000.

摘要

考察了新型整体硅胶棒柱的色谱性能。研究中使用的硅胶棒柱由四甲氧基硅烷制备,并用十八烷基硅烷修饰,并封装在不锈钢保护柱中,在硅胶和不锈钢管之间有两层聚合物。在 40°C 下,在乙腈-水(80/20,v/v)流动相中,最佳线性速度约为 2.3mm/s,背压为 7.5MPa 时,25cm 柱可提供高达 45000 个理论塔板用于芳烃,或最小板高约 5.5μm。该柱的渗透率与填充 5μm 颗粒的柱相似,K(F)约为 2.4×10(-14)m(2)(基于流动相的表观线性速度),而等效板高值与填充 2.5μm 颗粒的柱相同。通过串联两个或三个 25cm 柱,在背压低于 30MPa 的情况下,可实现 80000-120000 个理论塔板的生成。使用长柱可与传统整体硅胶柱或颗粒柱相比,更轻松地生成大量理论塔板。动力学图分析表明,在 N 大于 50000 的范围内,操作压力为 30MPa 的整体柱比操作压力为 40MPa 的完全多孔 3μm 颗粒柱提供更快的分离。

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