4.8 Article

Polymeric Microchip for the Simultaneous Determination of Anions and Cations by Hydrodynamic Injection Using a Dual-Channel Sequential Injection Microchip Electrophoresis System

Journal

ANALYTICAL CHEMISTRY
Volume 86, Issue 7, Pages 3380-3388

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ac403627g

Keywords

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Funding

  1. National Security Science & Technology Centre (NSSTC), Defence and Science and Technology Organisation
  2. Australian Federal Police
  3. National Institute for Forensic Science
  4. Victorian Police
  5. Forensic Science South Australia
  6. Chemistry Centre Western Australia
  7. Australian Research Council [DP0984745]
  8. Australian Research Council [DP0984745] Funding Source: Australian Research Council

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A dual-channel sequential injection microchip capillary electrophoresis system with pressure-driven injection is demonstrated for simultaneous separations of anions and cations from a single sample. The poly(methyl methacrylate) (PMMA) microchips feature integral in-plane contactless conductivity detection electrodes. A novel, hydrodynamic split-injection method utilizes background electrolyte (BGE) sheathing to gate the sample flows, while control over the injection volume is achieved by balancing hydrodynamic resistances using external hydrodynamic resistors. Injection is realized by a unique flow-through interface, allowing for automated, continuous sampling for sequential injection analysis by microchip electrophoresis. The developed system was very robust, with individual microchips used for up to 2000 analyses with lifetimes limited by irreversible blockages of the microchannels. The unique dual-channel geometry was demonstrated by the simultaneous separation of three cations under 40 s with limits of detection (LODs) ranging from 1.5 to 24 mu M. From a series of 100 sequential injections the %RSDs were determined for every fifth run, resulting in %RSDs for migration times that ranged from 0.3 to 0.7 (n = 20) and 2.3 to 4.5 for peak area (n = 20). This system offers low LODs and a high degree of reproducibility and robustness while the hydrodynamic injection eliminates electrokinetic bias during injection, making it attractive for a wide range of rapid, sensitive, and quantitative online analytical applications.

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