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Modeling gradient elution in countercurrent chromatography: Efficient separation of tanshinones from S alvia miltiorrhiza B unge
Countercurrent chromatography ( CCC ) is a support‐free liquid–liquid chromatography using centrifugal fields to hold the liquid stationary phase. CCC has been widely applied in the separation of various natural and synthetic components using a variety of biphasic liquid systems. The related hexane...
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Published in: | Journal of separation science 2012-04, Vol.35 (8), p.964-976 |
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Main Authors: | , , , |
Format: | Article |
Language: | English |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Countercurrent chromatography (
CCC
) is a support‐free liquid–liquid chromatography using centrifugal fields to hold the liquid stationary phase.
CCC
has been widely applied in the separation of various natural and synthetic components using a variety of biphasic liquid systems. The related hexane or heptane/ethyl acetate/methanol or ethanol/water biphasic liquid systems demonstrated their significance in
CCC
. Gradient is difficult in
CCC
since any composition change in one phase induces a composition change of the other phase to maintain phase equilibrium. This work provides a new insight into linear gradient elution in
CCC
that is feasible with some biphasic liquid systems such as selected compositions of the hexane/ethyl acetate/ethanol/water systems. The equations modeling solute motion inside the
CCC
column are proposed. Particular compositions of the liquid system, namely the hexane/ethyl acetate/ethanol/water 8:2:
E
:
W
compositions with
E
+
W
= 10, were studied from
W
= 1 to 9. They showed moderate changes in the upper organic phase compositions. The model is tested with the separation of tanshinones from the rhizome of
S
alvia miltiorrhiza
B
unge. Different linear solvent gradient profiles were experimentally performed between 8:2:5:5 and 8:2:3:7 compositions and the results were evaluated using the proposed model. Five tanshinones including dihydrotanshinone I, cryptotanshinone, tanshinone I, 1,2‐dihydrotanshinquinone, and tanshinone IIA have been successfully separated (>95% purities) using a gradient profile optimized by the developed model. The gradient model can be used only with biphasic liquid systems in which one phase shows minimum composition changes when the other phase composition changes notably. This case is not the general case for biphasic liquid systems but can be applied with specific compositions of the quaternary hexane or heptane/ethyl acetate/methanol or ethanol/water most useful
CCC
liquid systems. |
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ISSN: | 1615-9306 1615-9314 |
DOI: | 10.1002/jssc.201100993 |