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Sieving polymer synthesis by reversible addition fragmentation chain transfer polymerization

Version 2 2024-06-18, 06:00
Version 1 2013-12-01, 00:00
journal contribution
posted on 2024-06-18, 06:00 authored by Yi Heng Nai, Roderick C Jones, Michael C Breadmore
Replaceable sieving polymers are the fundamental component for high resolution nucleic acids separation in CE. The choice of polymer and its physical properties play significant roles in influencing separation performance. Recently, reversible addition fragmentation chain transfer (RAFT) polymerization has been shown to be a versatile polymerization technique capable of yielding well defined polymers previously unattainable by conventional free radical polymerization. In this study, a high molecular weight PDMA at 765 000 gmol-1 with a PDI of 1.55 was successfully synthesized with the use of chain transfer agent - 2-propionic acidyl butyl trithiocarbonate (PABTC) in a multi-step sequential RAFT polymerization approach. This study represents the first demonstration of RAFT polymerization for synthesizing polymers with the molecular weight range suitable for high resolution DNA separation in sieving electrophoresis. Adjustment of pH in the reaction was found to be crucial for the successful RAFT polymerization of high molecular weight polymer as the buffered condition minimizes the effect of hydrolysis and aminolysis commonly associated with trithiocarbonate chain transfer agents. The separation efficiency of PABTC-PDMA was found to have marginally superior separation performance compared to a commercial PDMA formulation, POP™-CAP, of similar molecular weight range.

History

Related Materials

Location

Weinheim, Germany

Language

eng

Publication classification

C1.1 Refereed article in a scholarly journal

Copyright notice

2013, WILEY‐VCH Verlag GmbH & Co. KGaA

Journal

Electrophoresis

Volume

34

Pagination

3189-3197

eISSN

1522-2683

Issue

22-23

Publisher

Wiley