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Controlled-Potential Coulometry: Electrolytic Methods01:17

Controlled-Potential Coulometry: Electrolytic Methods

Controlled-potential coulometry, also known as potentiostatic coulometry, employs a three-electrode system in which the working electrode's potential is precisely regulated using a potentiostat. Platinum working electrodes are utilized for positive potentials, while mercury pool electrodes are favored for extremely negative potentials. The platinum counter electrode is separated from the analyte using a membrane or salt bridge to avoid interference in the analysis.
The chosen potential ensures...
Controlled-Current Coulometry: Overview01:27

Controlled-Current Coulometry: Overview

Controlled current coulometry, also known as amperostatic coulometry, is a technique used in electrochemical analysis to measure the quantity of a substance through the controlled passage of current. It involves the application of a constant current to an electrochemical cell containing the analyte of interest. As the current flows through the cell, the analyte undergoes a redox reaction at the electrode surface, resulting in a charge transfer. By monitoring the time required for a certain...
Potentiometry: Membrane Electrodes01:15

Potentiometry: Membrane Electrodes

Membrane electrodes, also known as p-ion electrodes, use membranes that selectively interact with free analyte ions, generating a potential difference across the membrane. The resulting membrane potential, known as the asymmetry potential, is not zero even when analyte concentrations on both sides of the membrane are equal. The membrane's response is typically not selective to a single analyte but proportional to the concentration of all ions in the sample solution capable of interacting at the...
Potentiometry: Types of Electrodes01:19

Potentiometry: Types of Electrodes

Reference electrodes serve as a stable reference point for potentiometric measurements, while indicator and working electrodes react to variations in the composition of a solution.
The Standard Hydrogen Electrode (SHE) is a widely used reference electrode that maintains zero potential across all temperatures. However, its need for a continuous hydrogen gas supply renders it impractical for everyday use.
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Ion Exchange01:17

Ion Exchange

Ion exchange chromatography separates charged molecules from a solution by reversibly exchanging them with mobile, or 'active', ions associated with the oppositely charged stationary phase. This method can be used to separate ions, soften and deionize water, and purify solutions. The polymers comprising the ion-exchange column are high-molecular-weight and chemically stable polymers, crosslinked to be porous and essentially insoluble. They are also functionalized with either acidic or basic...

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Related Experiment Video

Updated: Jul 15, 2026

Multi-analyte Biochip (MAB) Based on All-solid-state Ion-selective Electrodes (ASSISE) for Physiological Research
08:03

Multi-analyte Biochip (MAB) Based on All-solid-state Ion-selective Electrodes (ASSISE) for Physiological Research

Published on: April 18, 2013

Pulsed galvanostatic control of solid-state polymeric ion-selective electrodes.

Hasini Perera1, Katherine Fordyce, Alexey Shvarev

  • 1Department of Chemistry, Oregon State University, 153 Gilbert Hall, Corvallis, Oregon 97331-4003, USA.

Analytical Chemistry
|May 10, 2007
PubMed
Summary

New ion-selective sensors utilize galvanostatic control and conducting polymers for enhanced sensitivity. This advancement enables reliable detection of polyions like protamine, paving the way for improved diagnostic tools.

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Last Updated: Jul 15, 2026

Multi-analyte Biochip (MAB) Based on All-solid-state Ion-selective Electrodes (ASSISE) for Physiological Research
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Published on: February 23, 2017

Area of Science:

  • Electroanalytical Chemistry
  • Sensor Technology
  • Materials Science

Background:

  • Traditional ion-selective sensors are limited by the Nernst equation, impacting sensitivity for clinically relevant polyions.
  • Recent advancements introduced electrochemically controlled modes for polymeric membrane ion-selective electrodes.
  • Conducting polymers offer potential as transduction layers in solid-contact sensors.

Purpose of the Study:

  • To develop reliable, robust, and maintenance-free solid-state reversible ion-selective sensors.
  • To investigate the use of conducting polymers as transduction layers in galvanostatically controlled sensors.
  • To advance polyion sensing technology towards commercial viability.

Main Methods:

  • Galvanostatic control of solid-state ion-selective sensors with a conducting polymer transduction layer.
  • Fabrication and characterization of a protamine-selective solid-contact sensor using a sodium-selective membrane model.
  • Development of a simplified diffusion-based theoretical model for interface polarization.

Main Results:

  • Demonstrated galvanostatically controlled ion-selective sensors with a conducting polymer transduction layer.
  • Achieved a substantial improvement in the low detection limit for protamine sensing (0.03 mg L-1).
  • Identified potential disruption of sensor response function due to interface polarization at small current densities.

Conclusions:

  • Galvanostatic control combined with conducting polymer transduction layers offers a promising approach for highly sensitive ion-selective sensors.
  • The developed protamine sensor represents a significant step towards commercially viable polyion sensing.
  • Theoretical modeling provides insights into interface phenomena affecting sensor performance.