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Radical Autoxidation01:20

Radical Autoxidation

The oxidation of an organic compound in the presence of air or oxygen is called autoxidation. For example, cumene reacts with oxygen to form hydroperoxide. Autoxidation involves initiation, propagation, and termination steps. Many organic compounds are susceptible to autoxidation—especially ethers in the presence of oxygen, which form hydroperoxides. Even though this reaction is slow, old ether bottles contain small amounts of peroxide, which leads to laboratory explosions during ether...
Corrosion02:49

Corrosion

The degradation of metals due to natural electrochemical processes is known as corrosion. Rust formation on iron, tarnishing of silver, and the blue-green patina that develops on copper are examples of corrosion. Corrosion involves the oxidation of metals. Sometimes it is protective, such as the oxidation of copper or aluminum, wherein a protective layer of metal oxide or its derivatives forms on the surface, protecting the underlying metal from further oxidation. In other cases, corrosion is...
Oxidation of Phenols to Quinones01:17

Oxidation of Phenols to Quinones

In the presence of oxidizing agents, phenols are oxidized to quinones. Quinones can be easily reduced back to phenols using mild reducing agents. The electron-donating hydroxyl group enhances the reactivity of the aromatic ring, enabling oxidation of the ring even in the absence of an α hydrogen.
o-hydroxy phenols are oxidized to o-quinones and p-hydroxy phenols to p-quinones. Such redox reactions involve the transfer of two electrons and two protons. The reversible redox property is crucial in...
Phase I Oxidative Reactions: Overview01:19

Phase I Oxidative Reactions: Overview

Phase I biotransformation, or functionalization, is a crucial chemical process that converts drugs and other xenobiotics into more water-soluble forms, facilitating expulsion from the body. It involves oxidative, reductive, and hydrolytic reactions that add or unveil polar functional groups on lipophilic substrates. Key players in phase I reactions are the mixed-function oxidases. Situated in liver cell microsomes, these enzymes predominantly carry out drug metabolism. They require molecular...
Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids02:04

Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids

Diols are compounds with two hydroxyl groups. In addition to syn dihydroxylation, diols can also be synthesized through the process of anti dihydroxylation. The process involves treating an alkene with a peroxycarboxylic acid to form an epoxide. Epoxides are highly strained three-membered rings with oxygen and two carbons occupying the corners of an equilateral triangle. This step is followed by ring-opening of the epoxide in the presence of an aqueous acid to give a trans diol.
Oxidation-Reduction Reactions03:11

Oxidation-Reduction Reactions

Oxidation–Reduction Reactions

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Related Experiment Video

Updated: Jun 12, 2026

Generation of Scalable, Metallic High-Aspect Ratio Nanocomposites in a Biological Liquid Medium
13:34

Generation of Scalable, Metallic High-Aspect Ratio Nanocomposites in a Biological Liquid Medium

Published on: July 8, 2015

Nanoparticulate copper--routes towards oxidative stability.

Volker Engels1, Faysal Benaskar, David A Jefferson

  • 1The University Chemical Laboratories, Lensfield Road, Cambridge CB2 1EW, UK.

Dalton Transactions (Cambridge, England : 2003)
|June 23, 2010
PubMed
Summary

Researchers developed a new method for creating stable, polymer-coated copper nanoparticles. Using sodium hypophosphite and poly(N-vinylpyrrolidone) yielded nanoparticles resistant to oxidation for months.

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[(DPEPhos)(bcp)Cu]PF6: A General and Broadly Applicable Copper-Based Photoredox Catalyst
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[(DPEPhos)(bcp)Cu]PF6: A General and Broadly Applicable Copper-Based Photoredox Catalyst

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Ion Mobility-Mass Spectrometry Techniques for Determining the Structure and Mechanisms of Metal Ion Recognition and Redox Activity of Metal Binding Oligopeptides
11:04

Ion Mobility-Mass Spectrometry Techniques for Determining the Structure and Mechanisms of Metal Ion Recognition and Redox Activity of Metal Binding Oligopeptides

Published on: September 7, 2019

Related Experiment Videos

Last Updated: Jun 12, 2026

Generation of Scalable, Metallic High-Aspect Ratio Nanocomposites in a Biological Liquid Medium
13:34

Generation of Scalable, Metallic High-Aspect Ratio Nanocomposites in a Biological Liquid Medium

Published on: July 8, 2015

[(DPEPhos)(bcp)Cu]PF6: A General and Broadly Applicable Copper-Based Photoredox Catalyst
09:12

[(DPEPhos)(bcp)Cu]PF6: A General and Broadly Applicable Copper-Based Photoredox Catalyst

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Ion Mobility-Mass Spectrometry Techniques for Determining the Structure and Mechanisms of Metal Ion Recognition and Redox Activity of Metal Binding Oligopeptides
11:04

Ion Mobility-Mass Spectrometry Techniques for Determining the Structure and Mechanisms of Metal Ion Recognition and Redox Activity of Metal Binding Oligopeptides

Published on: September 7, 2019

Area of Science:

  • Materials Science
  • Nanotechnology
  • Chemistry

Background:

  • Copper nanoparticles (CuNPs) are valuable in catalysis and electronics.
  • Achieving oxidative stability in CuNPs is a significant challenge.
  • Polymer coatings can enhance nanoparticle stability.

Purpose of the Study:

  • To investigate the influence of synthetic parameters on polymer-coated copper nanoparticle properties.
  • To develop a method for producing oxidatively stable copper nanoparticles.
  • To understand the role of polymeric anti-agglomerants and reducing agents.

Main Methods:

  • Modified polyol-based reduction in ethylene glycol.
  • Incorporation of poly(N-vinylpyrrolidone) (PVP) with varying molecular weights (10,000–55,000).
  • Use of reducing additives: hydrazine hydrate, sodium borohydride, and sodium hypophosphite monohydrate.

Main Results:

  • Ethylene glycol demonstrated reducing capabilities.
  • Sodium hypophosphite monohydrate as a co-reductant with PVP (M(av) 40,000) produced CuNPs with a mean size of 9.6 ± 1.0 nm.
  • The resulting polymer-coated CuNPs exhibited stability against oxidation for several months.

Conclusions:

  • The developed method successfully produced stable copper nanoparticles.
  • The combination of specific reducing agents and polymeric stabilizers is key to achieving oxidative stability.
  • This research provides insights into the fundamental mechanisms for creating robust nano-copper.