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The Inertsil Hybrid-Si HILIC HPLC column 100x3.0mm, 1.7µm, is based on a fully cross-linked hybrid silica matrix and is used in hydrophilic interaction chromatography (HILIC). The phase is unmodified and utilizes the polar surface of the hybrid silica for the retention of hydrophilic analytes. The hybrid silica offers greater resistance to alkaline conditions than conventional silica materials, thereby expanding the scope for method development. Typical applications include the analysis of highly polar active ingredients, metabolites, nucleosides, nucleotides, water-soluble pharmaceutical compounds, and other hydrophilic substances that exhibit only low retention in reverse-phase chromatography. Inertsil Hybrid-Si HILIC can be particularly useful when HILIC selectivity with a long column life, stable retention, and good peak shape is required under varying pH conditions.
The Inertsil Hybrid series consists of an organic-inorganic hybrid material. This hybrid material increases the stability of the silica framework against high pH values. As a result, the Inertsil Hybrid series can be used at pH values ranging from 1.0 to 12.0. Furthermore, this series is compatible with 100% aqueous mobile phases, which allows for the retention of polar substances as well. The service life can be extended by using appropriate pre-column cartridges.
Inertsil is a registered trademark of the manufacturer GL Sciences Inc., Tokyo, Japan.
| Brand | Inertsil Hybrid |
|---|---|
| Product Type | HPLC Column |
| Length | 100 mm |
| Internal Diameter | 3.0 mm |
| Particle Size | 1.7 µm |
| Chemistry | Silica |
| Chemistry Producers Term | Si |
| Pore Size | 165 Ã… |
| USP Class | L3 |
| Bet Surface Area [m2/g] | 185.0 |
| Endcapping | non-endcaooed |
| Country of Origin | Japan |
| Column Type | Analytical Column |
| Hardware Material | Stainless Steel |
| Hardware Type | Ready-to-use Column |
| pH Minimum | 1.0 |
| pH Maximum | 10.0 |
| Mode of Separation | Hydrophilic Interaction Chromatography (HILIC) |
| Technology | U(H)PLC |
| Matrix | Hybrid |
| Particle Morphology | fully porous |