15022AST
Astec® CHIROBIOTIC® V2 Chiral (5 μm) HPLC Columns
L × I.D. 10 cm × 4.6 mm, HPLC Column
Synonym(s):
CHIROBIOTIC V2 Chiral Chromatography Column
About This Item
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product name
Astec® CHIROBIOTIC® V2 Chiral HPLC Column, 5 μm particle size, L × I.D. 10 cm × 4.6 mm
material
stainless steel column
Agency
suitable for USP L88
description
HPLC column
product line
Astec®
packaging
pkg of 1 ea
manufacturer/tradename
Astec®
parameter
0-45 °C temperature
241 bar pressure (3500 psi)
technique(s)
HPLC: suitable
LC/MS: suitable
L × I.D.
10 cm × 4.6 mm
matrix
High-purity silica gel particle platform
fully porous particle
matrix active group
vancomycin phase
particle size
5 μm
pore size
200 Å
operating pH range
3.5-7.0
separation technique
chiral
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General description
- Bonded phase: Vancomycin
- Operating pH range: 3.5 - 7.0
- Particle diameter: 5, 10 or 16 μm
- Pore size: 100 Å (CHIROBIOTIC® V) or 200 Å (CHIROBIOTIC® V2)
CHIROBIOTIC FAQs
CHIROBIOTIC Reference Bibliography
Chiral Product Literature
Application
- Chiral analysis of dextromethorphan and levomethorphan in human hair by liquid chromatography-tandem mass spectrometry: This study utilized the CHIROBIOTIC® V2 column to achieve chiral separation of dextromethorphan and levomethorphan in human hair, highlighting the column′s application in forensic toxicology for precise enantiomeric analysis (Ji et al., 2022).
- Development and validation of an UFLC-MS/MS method for enantioselectivity determination of d,l-thero-methylphenidate, d,l-thero-ethylphenidate and d,l-thero-ritalinic acid in rat plasma: This research demonstrates the application of CHIROBIOTIC® V2 for pharmacokinetic studies in rats, establishing a method for enantioselective determination that can be crucial for drug development and therapeutic monitoring (Zhang et al., 2016).
- New high-performance liquid chromatography method for the determination of (R)-warfarin and (S)-warfarin using chiral separation on a glycopeptide-based stationary phase: The use of CHIROBIOTIC® V2 column in developing a new HPLC method for the separation of warfarin enantiomers underscores its utility in clinical analysis and therapeutic drug monitoring, showing its broad applicability in biomedical research (Malakova et al., 2009).
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