HPLC Column Selection Guide


1. Basic knowledge of column 

Chromatography is a laboratory technique commonly used for the separation of a mixture. The mixture is dissolved in a fluid called the mobile phase, which carries it through a structure holding another material called the stationary phase. Column chromatography is a separation technique in which the stationary bed is within a tube.  Thus, the column used in this analytical method is the heart of the chromatographic system.  Common requirements for columns include high column efficiency, good selectivity and fast analysis speed etc.  Packing materials for HPLC are mainly all porous spherical silica gel, organic polymer matrix or core-shell silica gel. Their particle sizes, for instance, 1.8 µm, 3 µm, 5 µm, 7 µm and 10 µm are available. The selection of columns,  and classification and main features of packaging materials are described herein. 


2. Selection of column dimensions and specifications of packing materials 

2.1 Length of column


Column LengthTypical Applications
10-50 mmFor fast separation, 1.8μm, 3μm particle size packing materials are recommended
100-150 mmStandard separation, 3~5μm particle size packing materials are recommended
≥ 250 mmHigh-resolution separation, 5~10μm particle size packing materials are recommended


2.2 Inner diameter of column


Column TypeInner Diameter
Micro-column0.3- 1.0 mm
Short-diameter column2.1 mm
Solvent-saving column
3.0 mm
Common analytical column
4.0, 4.6 mm
Semi-preparative column
7~10 mm
Preparative column
>20 mm

Generally, 4.6 mm is the most widely used for standard HPLC instruments. The 2.1 mm and 1.0 mm columns have result in higher sensitivity but can be affected by the dead volume outside the column. We recommend using users to use  these columns with low dead volume in the system. 


2.3 Particle size of packing materials 


Particle SizePerformance
5 µm
For separation from analysis to semi-preparation with widest application range
3–3.5 µm
For rapid separation of analytical column, short column, saving solvent
< 2 µm
Used in UPLC system for super-fast separation with high resolution
5–10 µm
It is often used to semi-preparative column
>10µm
It is often used to preparative column

Column with smaller particle size packing materials yields better resolution than that of larger particles. On the other hand, column of larger particles has lower back pressure and better tolerance of contamination.  Particle <2 um is generally used for UPLC which requires purer mobile phase.   

2.4 Pore size of packing materials


Pore SizePerformance
< 60 Å
It is not useful for HPLC analysis, which will cause tailing and lower separation efficiency.
60 – 150 Å
It is ideal for the separation of small molecules such as drug molecules and small molecule peptides.
300 –1,000 Å
It is ideal for the separation of macromolecules, such as polypeptides, nucleosides and polymersl.
> 1,000 Å
It is ideal for the separation of polymers, such as DNA and biological macromolecules.

The selection of pore size depends on the size of the molecules to be analyzed.  The larger the molecules, the larger the pores should be chosen. Generally, compounds with molecular weight less than 2000 can use  a pore size of 120 Å, while compounds with molecular weight greater than 2000 are recommended to use a pore size of 200 Å and above. Pore size also affects the resolution: , the smaller the pore, the more surface and interaction with the molecules to be analyzed. 


2.5 Carbon load of column

UltisilⓇ Series C18 Column
Carbon Load(%)
XB-C18
17
AQ-C18
12
LP-C18
10
PAH
22
Polar-RP
18
ALK-C18
12

Carbon loading determines the surface coverage of desired functional groups on the packing materials.  For silica-based column, the higher carbon loading, the denser surface functional groups and the less unreacted silanol groups on the surface.     

● The higher the carbon loading, the longer the sample retained on the column.  It is desired for the separation of compounds that are poor retained such as some polar compounds. Meanwhile, high carbon loading protects water from accessing the silica surface  and increase the hydrolytic stability of column.  It also helps improving the peak tailing of polar compounds due to reduced interaction with silica surface
● Low carbon loading column is desired for the analysis of neutral and alkaline compounds, which can reduce the loss of solvent and shorten the analysis time.



3. Classification of packing materials of common columns

Column can be classified by the stationary phase application method types (reversed phase, normal phase, HILIC, size exclusion--) and bound phases ( C18, C8, NH2----). 

3.1 Reversed-phase method 

ColumnBonding PhaseTypical Applications
Ultisil® XB-C18
Octadecyl or ODS
Strong retention and wide application
Ultisil® XB-C8
Octyl
Like C18, but with less retention
UItisil® XB-C4
Butyl
Strong ability to retain hydrophobic and polar compounds
Ultisil® XB-C1
Trimethylsilane
Separation of hydrophobic polypeptides and proteins
Ultisil® XB-PhenyI
PhenyI
Good selectivity to aromatic compounds and polar compounds
Ultisil® XB-CN
Cyano
Unique selectivity to polar compounds
UItisil® XB-NH2
Amino
Analyze monosaccharide samples in reversed mode 


3.2 Normal-phase method

ColumnBonding PhaseTypical Applications
UItisil® XB-CN
Cyano
Good universality, moderate polarity, and wide applications
Ultisil® Diol
Diol
Its polarity is greater than CN and has better stability and reproducibility
UItisil® XB-NH2
Amino
Analysis of polar compounds
UItisil® XB-SiO2
N/A
Separation of polar compounds which are easily tailing.


3.3 Size exclusion method

ColumnBonding PhaseApplication
Xtimate ® SEC molecular exclusion column
Hydrophilic globular protein silica gel
separation and determination of water soluble polymer and biological macro-molecular.

3.4 Ion exchange method

ColumnBonding PhaseApplication
Ultisil® XB-SCX Sulfonic acid
Sulfonic acid
Strong cation exchange column
Ultisil® XB-SAX
Quaternary ammonium salt 
Strong anion exchange column
Xtimate ® Sugar-(H+)
Sugar-H
Widely used in the separation of organic acids and sugar
Xtimate ® Sugar Ca(Ca2+) 
Sugar-Ca
Mainly used for mannitol analysis

3.5 Reversed-phase method for chiral molecules separation 

ColumnBonding PhaseApplication
UItisil® Amy-D
Amylose tris 
Separation of chiral molecules
Ultisil® Cellu-D 
Cellulose tris
Separation of chiral molecules


3.6 HIPIC hydrophilic chromatographic method

ColumnBonding PhaseApplication
UItisil® HILIC-SiO2
N/ASeparating high polar substances in circumstance of high aqueous phase

4.0 Selection of analysis modes and column types

To decide which method and column is suitable, the molecule to be analyzed should be considered in the first step.  Below process Selection I describes a step by step guides to identify the right analysis modes.    Once the analysis mode was has been determined, one should consider the column phase.  C18 column is most used for many analyses.  But if one wants to analyze a very polar molecule, it may not interact with the C18 material. In this case, C4, CN, diol or phenyl phases are more suitable. In another case if the analyte is too unpolar it can irreversibly retain on the column and cannot elute from the column. In this case a silica, CN or NH2 phase can be tried.  Once the column phase is decided, the focus will be on the selection of dimensions and specifications for the column, such as particle size, pore size, internal diameter, and carbon loading. In addition, the composition and pH for the composition also needs to be optimized to achieve best separation, Selection 2 provides a guideline for how to select the model of columns based on the mobile phase conditions.  







If you have any questions on selecting a HPLC column or require further information, please feel free to contact us at sales@auroraprosci.com. 

  • HPLC Column Selection Guide

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