Jove
Visualize
Contact Us

Related Concept Videos

Voltammetric Techniques: Pulse Voltammetry01:17

Voltammetric Techniques: Pulse Voltammetry

466
Differential-pulse voltammetry (DPV) is a type of voltammetry that involves applying a series of voltage pulses to an electrochemical cell while measuring the resulting current. In DPV, the differential pulse or small potential pulses are superimposed on a linear potential sweep. The magnitude of these pulses is typically small, often in the millivolt range. Each voltage pulse lasts a short duration, usually in the order of a few milliseconds, and is applied at regular intervals along the...
466
Voltammetric Techniques: Linear-Scan (E vs Time)01:12

Voltammetric Techniques: Linear-Scan (E vs Time)

378
Polarography is a classical voltammetric technique used to analyze electrochemical reactions. This method applies a linear potential sweep to a dropping mercury electrode (DME), and the resulting current is measured. A dropping mercury electrode is commonly used as the working electrode in polarography. It consists of a capillary tube filled with mercury, where the tiny droplet forms at the tip. This droplet continuously drops from the capillary, creating a new electrode surface for each...
378
Voltammetry: Overview01:20

Voltammetry: Overview

1.4K
Voltammetry is an electroanalytical technique in which the current flowing through an electrochemical cell is measured as a function of applied potential, typically under conditions of concentration polarization. The technique provides valuable information about redox-active species, and the current response is plotted as a voltammogram.
A voltammetric cell uses three electrodes: a working electrode, a reference electrode, and an auxiliary electrode. The redox reactions occur in the working...
1.4K
Voltammograms: Overview01:16

Voltammograms: Overview

191
Voltammograms are current plots as a function of applied potential, offering insights into electrochemical systems. The shape of a voltammogram depends on how the current is measured and whether convection (heat transfer by fluid movement) is present or absent.
Shapes of Voltammograms
191
Voltammetric Techniques: Cyclic Voltammetry01:10

Voltammetric Techniques: Cyclic Voltammetry

413
Cyclic voltammetry (CV) is an electrochemical technique used to investigate the redox properties of a chemical species. It involves measuring the current response of an electrochemical cell as a function of the applied potential. The setup for cyclic voltammetry typically consists of a working electrode, a reference electrode, and a counter electrode—all immersed in an electrolyte solution. The working electrode is where the redox reaction of interest occurs, while the reference electrode...
413
Voltammetry: Stripping Methods01:13

Voltammetry: Stripping Methods

196
Anodic Stripping Voltammetry (ASV), Cathodic Stripping Voltammetry (CSV), and Adsorptive Stripping Voltammetry (AdSV) are electrochemical techniques used to determine trace amounts of analytes in solution. These methods involve applying a potential to an electrode and measuring the resulting current.
Anodic Stripping Voltammetry (ASV)
ASV is used to determine metals and metalloids at trace levels. It involves two steps: deposition and stripping. First, a negative potential is applied to the...
196

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Sustainable and modification-free voltammetric quantification of thymoquinone in Nigella sativa oil-based food products.

Food chemistry·2026
Same author

Electroanalysis Using Isostatic Graphite Electrodes.

Analytical chemistry·2025
Same author

Nickel cobalt selenide as a nano-moss electrocatalyst for detection of gaseous hydrogen peroxide.

Mikrochimica acta·2025
Same author

Revealing the analytical potential of thin organic film electrodes: Electrochemical insights into anticancer drug docetaxel at liquid|liquid interfaces.

Bioelectrochemistry (Amsterdam, Netherlands)·2025
Same author

Synthesis, Characterization, and Electrocatalytic Properties of PrMn<sub>0.5</sub>M<sub>0.5</sub>O<sub>3</sub> (M = Cr, Fe, Co, Ni) Perovskites.

Materials (Basel, Switzerland)·2025
Same author

Genuine anodic and cathodic current components in cyclic voltammetry.

Scientific reports·2024
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Experiment Video

Updated: Jun 19, 2025

Using Cyclic Voltammetry, UV-Vis-NIR, and EPR Spectroelectrochemistry to Analyze Organic Compounds
11:44

Using Cyclic Voltammetry, UV-Vis-NIR, and EPR Spectroelectrochemistry to Analyze Organic Compounds

Published on: October 18, 2018

26.5K

Genuine differential voltammetry.

Valentin Mirceski1, Milivoj Lovric2

  • 1Department of Inorganic and Analytical Chemistry, University of Lodz, Tamka 12, 91-403, Lodz, Poland; Institute of Chemistry, Faculty of Natural Sciences and Mathematics, Ss Cyril and Methodius University in Skopje, P.O. Box 162, 1000, Skopje, Macedonia; Research Center for Environment and Materials, Macedonian Academy of Sciences and Arts, Bul. Krste Misirkov 2, 1000, Skopje, Macedonia.

Talanta
|July 26, 2024
PubMed
Summary

A new differential voltammetry method separates anodic and cathodic currents from net current measurements. This novel approach enhances electrode kinetics analysis and analytical performance for fast electrochemical reactions.

Keywords:
Differential voltammetryElectrode kineticsImplicit anodic and cathodic current components

More Related Videos

Electrochemical Roughening of Thin-Film Platinum Macro and Microelectrodes
08:32

Electrochemical Roughening of Thin-Film Platinum Macro and Microelectrodes

Published on: June 30, 2019

7.7K
Examination of Rapid Dopamine Dynamics with Fast Scan Cyclic Voltammetry During Intra-oral Tastant Administration in Awake Rats
10:44

Examination of Rapid Dopamine Dynamics with Fast Scan Cyclic Voltammetry During Intra-oral Tastant Administration in Awake Rats

Published on: August 12, 2015

12.7K

Related Experiment Videos

Last Updated: Jun 19, 2025

Using Cyclic Voltammetry, UV-Vis-NIR, and EPR Spectroelectrochemistry to Analyze Organic Compounds
11:44

Using Cyclic Voltammetry, UV-Vis-NIR, and EPR Spectroelectrochemistry to Analyze Organic Compounds

Published on: October 18, 2018

26.5K
Electrochemical Roughening of Thin-Film Platinum Macro and Microelectrodes
08:32

Electrochemical Roughening of Thin-Film Platinum Macro and Microelectrodes

Published on: June 30, 2019

7.7K
Examination of Rapid Dopamine Dynamics with Fast Scan Cyclic Voltammetry During Intra-oral Tastant Administration in Awake Rats
10:44

Examination of Rapid Dopamine Dynamics with Fast Scan Cyclic Voltammetry During Intra-oral Tastant Administration in Awake Rats

Published on: August 12, 2015

12.7K

Area of Science:

  • Electrochemistry
  • Analytical Chemistry
  • Physical Chemistry

Background:

  • Conventional voltammetry measures net current, obscuring individual anodic and cathodic contributions.
  • Understanding electrode kinetics is crucial for electrochemical analysis.
  • Existing differential voltammetry techniques have limitations for fast, reversible processes.

Purpose of the Study:

  • To propose and develop a novel differential voltammetry technique.
  • To mathematically model and extract implicit anodic and cathodic current components.
  • To establish a new differential current for improved electrochemical analysis.

Main Methods:

  • Mathematical modeling of electrode reactions using the Butler-Volmer kinetic model.
  • Deconvolution of conventional net current into implicit anodic and cathodic components.
  • Calculation of a novel differential current from these implicit components.

Main Results:

  • Successfully defined and estimated implicit anodic and cathodic current components.
  • Developed a novel differential current with superior analytical performance for fast, reversible reactions.
  • Demonstrated potential for estimating rate constants of fast electrode processes.

Conclusions:

  • The novel differential voltammetry offers enhanced electrode kinetics and analytical capabilities.
  • This method is potentially superior to existing techniques like square-wave voltammetry.
  • It provides a new pathway for studying electrode processes using voltammetry, even for fast reactions.