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Related Experiment Video

Updated: Jun 28, 2026

High-throughput Fluorometric Measurement of Potential Soil Extracellular Enzyme Activities
12:33

High-throughput Fluorometric Measurement of Potential Soil Extracellular Enzyme Activities

Published on: November 15, 2013

[Not Available].

A Boughriet1, M Wartel, J C Fischer

  • 1Laboratoire de Chimie Analytique et Marine, Université des Sciences et Techniques de Lille, Batiment C(8), 59655 Villeneuve d'Ascq, France.

Talanta
|May 1, 1986
PubMed
Summary
This summary is machine-generated.

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This study electrochemically investigates dinitrogen tetroxide (N2O4) in sulpholane, revealing its oxidation and reduction pathways. Trace water significantly impacts N2O4

Area of Science:

  • Electrochemistry
  • Inorganic Chemistry
  • Physical Chemistry

Context:

  • Dinitrogen tetroxide (N2O4) exhibits complex redox behavior in sulpholane.
  • Understanding N2O4 electrochemistry is crucial for its applications.
  • Equilibrium constants for N2O4 reactions were previously established.

Purpose:

  • To electrochemically study dinitrogen tetroxide (N2O4) using linear and cyclic voltammetry.
  • To investigate the oxidation and reduction pathways of N2O4 at a platinum electrode.
  • To evaluate the impact of water impurities on N2O4 redox properties.

Summary:

  • N2O4 undergoes one oxidation step to form NO2(+).
  • N2O4 exhibits two distinct reduction waves, involving intermediates like N2O3, NO, and NO3(-).

Related Experiment Videos

Last Updated: Jun 28, 2026

High-throughput Fluorometric Measurement of Potential Soil Extracellular Enzyme Activities
12:33

High-throughput Fluorometric Measurement of Potential Soil Extracellular Enzyme Activities

Published on: November 15, 2013

  • Trace water complicates the redox behavior by forming HNO2, HNO3, and N2O3, influencing the observed electrochemical signals.
  • Impact:

    • Provides a detailed electrochemical profile of N2O4 in sulpholane.
    • Establishes standard potentials for key N2O4 redox couples.
    • Highlights the sensitivity of N2O4 electrochemistry to water contamination, crucial for experimental design and application.