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Potentiometry: Overview01:06

Potentiometry: Overview

Potentiometry is an analytical technique that measures the potential difference between two electrodes in an electrochemical cell without drawing any significant current that could alter the solution's composition. This method employs an indicator electrode, which exchanges electrons with the analyte solution, and a reference electrode with a constant potential. Each electrode is immersed in a solution comprised of two half-cells. In a conventional setup, the reference electrode serves as the...
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.
An alternative to SHE is the Saturated Calomel Electrode (SCE). This electrode features an...
Potentiometric Titration: Overview01:31

Potentiometric Titration: Overview

Potentiometric titration is a quantitative analytical technique that determines the concentration of an analyte by measuring the potential difference between the two electrodes in the solution. The endpoint of a potentiometric titration is the point at which there is a significant change in the potential difference. It occurs when the stoichiometric reaction between the analyte and the titrant is complete. The endpoint is usually determined graphically by plotting the measured potential...
Potentiometer01:30

Potentiometer

Voltage and current measurements using a standard voltmeter and ammeter alter the circuit being measured either by drawing or resisting the current flow, which introduces uncertainties in the measurements. Null measurements balance the voltages so that no current flows through the measuring device and, therefore, no alterations occur in the measured circuit.
Suppose the emf of a battery needs to be measured. If the battery is directly connected to a standard voltmeter, the measured quantity is...
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...

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Related Experiment Video

Updated: Jun 9, 2026

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
11:33

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics

Published on: January 19, 2018

A versatile high resolution scanning tunneling potentiometry implementation.

T Druga1, M Wenderoth, J Homoth

  • 1IV. Physikalisches Institut der Universität Göttingen, Germany.

The Review of Scientific Instruments
|September 7, 2010
PubMed
Summary

A new scanning tunneling potentiometry technique offers microvolt resolution for electrochemical potential measurements. This method enhances scanning tunneling microscopy (STM) capabilities for nanoscale surface analysis.

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Last Updated: Jun 9, 2026

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
11:33

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics

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Probing the Structure and Dynamics of Interfacial Water with Scanning Tunneling Microscopy and Spectroscopy
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Probing the Structure and Dynamics of Interfacial Water with Scanning Tunneling Microscopy and Spectroscopy

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Area of Science:

  • Materials Science
  • Surface Science
  • Electrochemistry

Background:

  • Standard scanning tunneling microscopy (STM) lacks precise electrochemical potential measurement capabilities.
  • Characterizing local potential variations and thermovoltage effects is crucial for nanoscale surface analysis.

Purpose of the Study:

  • To introduce a novel scanning tunneling potentiometry (STP) technique adaptable to standard STM setups.
  • To demonstrate the application of STP for high-resolution electrochemical potential and thermovoltage measurements.

Main Methods:

  • Integration of a potentiometry module with a standard scanning tunneling microscope (STM).
  • Utilizing the enhanced STM for constant current imaging and scanning tunneling spectroscopy.
  • Performing measurements of electrochemical potential with microvolt resolution.

Main Results:

  • Local electrochemical potential variations were mapped at angstrom length scales on biased samples.
  • Locally varying thermovoltage at the tunneling junction was investigated with differing tip and sample temperatures.
  • The technique demonstrated potential for chemical identification and elimination of thermovoltage artifacts in STM topographies.

Conclusions:

  • The developed scanning tunneling potentiometry (STP) technique is a versatile addition to standard STM.
  • STP enables microvolt-resolution electrochemical potential mapping and thermovoltage analysis at the nanoscale.
  • This method offers new possibilities for surface characterization and artifact correction in STM.