Jove
Visualize
Contact Us
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 Concept Videos

Batteries and Fuel Cells03:12

Batteries and Fuel Cells

31.8K
A battery is a galvanic cell that is used as a source of electrical power for specific applications. Modern batteries exist in a multitude of forms to accommodate various applications, from tiny button batteries such as those that power wristwatches to the very large batteries used to supply backup energy to municipal power grids. Some batteries are designed for single-use applications and cannot be recharged (primary cells), while others are based on conveniently reversible cell reactions that...
31.8K
Weak Acid Solutions04:02

Weak Acid Solutions

44.7K
Few compounds act as strong acids. A far greater number of compounds behave as weak acids and only partially react with water, leaving a large majority of dissolved molecules in their original form and generating a relatively small amount of hydronium ions. Weak acids are commonly encountered in nature, being the substances partly responsible for the tangy taste of citrus fruits, the stinging sensation of insect bites, and the unpleasant smells associated with body odor. A familiar example of a...
44.7K
Voltaic/Galvanic Cells02:47

Voltaic/Galvanic Cells

67.6K
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,...
67.6K

You might also read

Related Articles

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

Sort by
Same author

Pre-Activated Cascade Redox Enables High-Voltage Multi-Electron Anion Storage in Graphite.

Angewandte Chemie (International ed. in English)·2026
Same author

Spin-State Engineering of Ni Centers by Dual-Ligand Competitive Coordination for Superior Oxygen Evolution Reaction.

Angewandte Chemie (International ed. in English)·2026
Same author

Sustainable All-Mn-Based Layered Cathode with Dynamic Structural Stability for Durable Sodium-Ion Batteries.

Advanced materials (Deerfield Beach, Fla.)·2026
Same author

Polydopamine Nanocages Orchestrate Multi-Site Networks on the Ni<sub>4</sub>Mo Electrocatalyst for Efficient and Ultrastable Hydrogen Evolution.

Journal of the American Chemical Society·2026
Same author

Droplet-like Na/Vacancy Ordering Enables Ultrahigh-Na-Content P2-Type Oxide Cathodes.

Journal of the American Chemical Society·2026
Same author

Out-Of-Plane Symmetry Design Arrests Structural Evolution in Layered-Type Framework for Sustainable Sodium Shuttling.

Journal of the American Chemical Society·2026

Related Experiment Video

Updated: Mar 14, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
10:03

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques

Published on: November 11, 2013

26.2K

FeMnO3: a high-performance Li-ion battery anode material.

Kangzhe Cao1, Huiqiao Liu1, Xiaohong Xu1

  • 1Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry, Nankai University, Tianjin 300071, China. jiaolf@nankai.edu.cn.

Chemical Communications (Cambridge, England)
|October 7, 2016
PubMed
Summary

Iron manganese oxide (FeMnO3) particles demonstrate high capacity and stability as anode materials for lithium-ion batteries, offering a promising avenue for advanced energy storage solutions.

More Related Videos

Construction and Testing of Coin Cells of Lithium Ion Batteries
07:23

Construction and Testing of Coin Cells of Lithium Ion Batteries

Published on: August 2, 2012

32.9K
Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
05:33

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications

Published on: August 12, 2013

22.4K

Related Experiment Videos

Last Updated: Mar 14, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
10:03

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques

Published on: November 11, 2013

26.2K
Construction and Testing of Coin Cells of Lithium Ion Batteries
07:23

Construction and Testing of Coin Cells of Lithium Ion Batteries

Published on: August 2, 2012

32.9K
Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
05:33

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications

Published on: August 12, 2013

22.4K

Area of Science:

  • Materials Science
  • Electrochemistry
  • Energy Storage

Background:

  • Development of advanced anode materials is crucial for improving lithium-ion battery performance.
  • Existing anode materials face limitations in capacity, rate capability, and long-term stability.
  • Novel materials are needed to meet the growing demand for high-performance energy storage.

Purpose of the Study:

  • To synthesize and characterize iron manganese oxide (FeMnO3) particles.
  • To evaluate the electrochemical performance of FeMnO3 as an anode material for lithium-ion batteries.
  • To investigate the lithium storage mechanism in FeMnO3.

Main Methods:

  • FeMnO3 particles were synthesized using a specific preparation method.
  • Electrochemical performance was assessed through galvanostatic cycling, rate capability tests, and cyclic voltammetry.
  • The lithium storage mechanism was studied using techniques such as ex-situ analysis (though not explicitly stated, implied by 'studied').

Main Results:

  • The synthesized FeMnO3 electrode exhibited a high reversible capacity of 984 mA h g-1 at a current density of 1.0 A g-1.
  • Excellent rate capability was observed, indicating efficient ion transport.
  • Good cycling stability was demonstrated, retaining 984 mA h g-1 after 500 cycles.

Conclusions:

  • FeMnO3 is a promising anode material for lithium-ion batteries due to its high capacity, rate capability, and cycling stability.
  • The study provides insights into the lithium storage mechanism, aiding future material design.
  • This research contributes to the development of next-generation energy storage technologies.