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Electrochemical Systems01:24

Electrochemical Systems

Electrochemical systems provide a fascinating insight into the dynamic interplay of charged species within various phases. One notable example is the interaction between a membrane permeable to K⁺ ions but not to Cl⁻ ions, separating an aqueous KCl solution from pure water. As K⁺ ions diffuse through the membrane, they generate net charges on each phase, leading to a potential difference between them.Similarly, when a piece of Zn is immersed in an aqueous ZnSO₄ solution, the Zn metal, composed...
Processes at Electrodes01:30

Processes at Electrodes

The electrode interacts with ions in the electrolyte solution at its interface. The rate of oxidation and reduction depends on the speed at which electrons can transfer through this interface. As ions attach to or leave the electrode surface, the electrode acquires a charge, and an electrical potential forms across the interface, making the process more difficult to reach equilibrium. The charge on the electrode affects the local ion concentrations in the solution, though thermal motion...
Electrochemical Cells01:28

Electrochemical Cells

Electrochemical cells are systems that convert chemical energy into electrical energy or use electrical energy to drive chemical reactions. They consist of two electrodes in contact with an electrolyte, where redox reactions enable electron transfer. Most electrochemical cells include two half-cells connected by an external wire for electron flow and a salt bridge for ion flow. The salt bridge contains an electrolyte solution and maintains charge neutrality by allowing ions—not electrons—to...
Interfacial Electrochemical Methods: Overview01:06

Interfacial Electrochemical Methods: Overview

Interfacial electrochemical methods focus on the phenomena occurring at the boundary between an electrode and a solution, as opposed to bulk methods that concentrate on the solution's overall properties. These interfacial methods are classified as either static or dynamic based on the presence of a nonzero current in the electrochemical cell and the consistency of analyte concentrations. Static methods, such as potentiometry, measure the cell's potential without any significant current passing...
Electrolysis03:00

Electrolysis

In a galvanic cell, the electrical work is done by a redox system on its surroundings as electrons produced by the spontaneous redox reactions are transferred through an external circuit. Alternatively, an external circuit does work on a redox system by imposing a voltage sufficient to drive an otherwise nonspontaneous reaction in a process known as electrolysis. For instance, recharging a battery involves the use of an external power source to drive the spontaneous (discharge) cell reaction in...
Voltaic/Galvanic Cells02:47

Voltaic/Galvanic Cells

Spontaneous Chemical Reactions
Spontaneous redox reactions occur abundantly in nature. The chemical reaction occurring in a disposable AA battery powering our remote controls is one such example of a spontaneous redox reaction. Another example is the immersion of coiled copper wire into an aqueous silver nitrate solution. The reaction shows a gradual, visually impressive color change from colorless to bright blue and the formation of a grey precipitate on the copper wire. In this experiment,...

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Related Experiment Video

Updated: Jun 4, 2026

A Method to Manipulate Surface Tension of a Liquid Metal via Surface Oxidation and Reduction
09:20

A Method to Manipulate Surface Tension of a Liquid Metal via Surface Oxidation and Reduction

Published on: January 26, 2016

Switching atomic friction by electrochemical oxidation.

Aleksander Labuda1, Florian Hausen, Nitya Nand Gosvami

  • 1Department of Physics, McGill University , Montreal, Canada.

Langmuir : the ACS Journal of Surfaces and Colloids
|February 15, 2011
PubMed
Summary

Electrochemical oxidation dramatically alters gold surface friction, revealing atomic-scale stick-slip mechanisms. Switching between low-friction and high-friction states is reversible, offering insights into surface interactions.

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Hydrogen Charging of Aluminum using Friction in Water
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Hydrogen Charging of Aluminum using Friction in Water

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Last Updated: Jun 4, 2026

A Method to Manipulate Surface Tension of a Liquid Metal via Surface Oxidation and Reduction
09:20

A Method to Manipulate Surface Tension of a Liquid Metal via Surface Oxidation and Reduction

Published on: January 26, 2016

Determining Tribocorrosion Rate and Wear-Corrosion Synergy of Bulk and Thin Film Aluminum Alloys
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Determining Tribocorrosion Rate and Wear-Corrosion Synergy of Bulk and Thin Film Aluminum Alloys

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Hydrogen Charging of Aluminum using Friction in Water
07:50

Hydrogen Charging of Aluminum using Friction in Water

Published on: January 28, 2020

Area of Science:

  • Surface Science
  • Tribology
  • Electrochemistry

Background:

  • Atomic Force Microscopy (AFM) is a powerful tool for studying surface properties at the nanoscale.
  • Friction mechanisms on metallic surfaces are complex and depend on surface structure and chemical state.
  • Electrochemical oxidation can significantly modify surface properties, impacting tribological behavior.

Purpose of the Study:

  • To investigate the effect of electrochemical oxidation on gold surface friction at the atomic scale.
  • To elucidate the atomic-scale mechanisms governing friction on gold surfaces before and after oxidation.
  • To explore the reversibility and switching behavior between different friction states.

Main Methods:

  • Utilizing Atomic Force Microscopy (AFM) with a sliding tip to measure lateral forces.
  • Performing experiments on pristine Au(111) surfaces and electrochemically oxidized gold surfaces.
  • Analyzing stick-slip motion and friction dependence on applied load.

Main Results:

  • Pristine Au(111) surfaces exhibit extremely low friction with load-independent, atomically periodic stick-slip motion.
  • Significant friction and surface wear occur on Au(111) only above a critical load.
  • Oxidized gold surfaces show irregular stick-slip motion and friction that increases linearly with load.
  • Reversible switching between low and high friction states was achieved in perchloric and sulfuric acid solutions.

Conclusions:

  • Electrochemical oxidation transforms gold surface friction from load-independent to load-dependent due to changes in surface structure (amorphous oxo-hydroxide).
  • Atomic place exchange mechanisms are implicated in the friction changes upon oxidation.
  • The reversible switching demonstrates the dynamic control of friction at the nanoscale through electrochemical processes.