Electrochemical dissolved oxygen removal from microfluidic streams for LOC sample pretreatment.

Anal Chem

Chemistry Department, University of Louisville, 2320 S. Brook, Louisville, Kentucky 40292, United States.

Published: September 2014

AI Article Synopsis

  • Current water quality monitoring typically provides only brief analyses at specific times, prompting interest in affordable, long-term sensors for reliable monitoring of contaminants in various water sources.
  • A key challenge for these sensors is the calibration process and the need to pre-treat samples to remove dissolved oxygen, which interferes with the analysis of certain heavy metals.
  • The researchers developed an innovative in-line electrochemical device that significantly reduces dissolved oxygen without altering the sample, showing effective performance with minimal energy consumption, making it suitable for various applications in laboratory-on-a-chip (LOC) setups.

Article Abstract

Current water quality monitoring for heavy metal contaminants largely results in analytical snapshots at a particular time and place. Therefore, we have been interested in miniaturized and inexpensive sensors suitable for long-term, real-time monitoring of the drinking water distribution grid, industrial wastewater effluents, and even rivers and lakes. Among the biggest challenges for such sensors are the issues of in-field device calibration and sample pretreatment. Previously, we have demonstrated use of coulometric stripping analysis for calibration-free determination of copper and mercury. For more negatively reduced metals, O2 reduction interferes with stripping analysis; hence, most electroanalysis techniques rely on pretreatments to remove dissolved oxygen (DO). Current strategies for portable DO removal offer limited practicality, because of their complexity, and often cause inadvertent sample alterations. Therefore, we have designed an indirect in-line electrochemical DO removal device (EDOR), utilizing a silver cathode to reduce DO in a chamber that is fluidically isolated from the sample stream by an O2-permeable membrane. The resulting concentration gradient supports passive DO diffusion from the sample stream into the deoxygenation chamber. The DO levels in the sample stream were determined by cyclic voltammetry (CV) and amperometry at a custom thin-layer cell (TLC) detector. Results show removal of 98% of the DO in a test sample at flow rates approaching 50 μL/min and power consumption as low as 165 mW h L(-1) at steady state. Besides our specific stripping application, this device is well-suited for LOC applications where miniaturized DO removal and/or regulation are desirable.

Download full-text PDF

Source
http://dx.doi.org/10.1021/ac501398fDOI Listing

Publication Analysis

Top Keywords

sample stream
12
dissolved oxygen
8
sample pretreatment
8
stripping analysis
8
sample
7
removal
5
electrochemical dissolved
4
oxygen removal
4
removal microfluidic
4
microfluidic streams
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!