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

You might also read

Related Articles

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

Sort by
Same author

Mechanism of blueberry anthocyanins in ameliorating radiation-induced intestinal injury through gut microbiota modulation.

Frontiers in immunology·2026
Same author

Application of Terahertz Technology in Food Safety: Rice Origin-Variety Classification Based on Spectral Analysis and Machine Learning.

Foods (Basel, Switzerland)·2026
Same author

Nitroxyl relieves acute kidney injury by suppressing SLC31A1-mediated cuproptosis in renal tubular epithelial cells.

Life sciences·2026
Same author

Coordination Tuning of [VO<sub>6</sub>] and [PO<sub>4</sub>] Units Induced Solid-Solution Behavior in Na<sub>3</sub>V<sub>2</sub>(PO<sub>4</sub>)<sub>3</sub> towards Aqueous Sodium-Ion Batteries.

Inorganic chemistry·2026
Same author

Electrolyte additive screening for co-regulation of solvation and solid electrolyte interphase in aqueous zinc batteries.

Nature communications·2026
Same author

Exploration of interfacial chemistry and physical movement in fixed-bed adsorption/desorption of anthocyanins with and without in-process ultrasonication.

Ultrasonics sonochemistry·2026

Related Experiment Video

Updated: Mar 30, 2026

Non-aqueous Electrode Processing and Construction of Lithium-ion Coin Cells
12:28

Non-aqueous Electrode Processing and Construction of Lithium-ion Coin Cells

Published on: February 1, 2016

22.4K

Multi-scale spatial Design of Dual‑carbon Encapsulated Silicon Anode towards efficient Lithium storage.

Zheng Zhang1, Jiabao Li1, Zheng Wang1

  • 1School of Chemistry and Materials, Yangzhou University, 180 Si-Wang-Ting Road, Yangzhou, Jiangsu 225002, China.

Journal of Colloid and Interface Science
|March 28, 2026
PubMed
Summary

This study developed a dual-carbon encapsulation strategy for silicon anodes in lithium-ion batteries. The innovative design enhances electronic conductivity and structural stability, significantly improving battery performance and longevity.

Keywords:
Charge transfer kineticsElectrode integrityMulti-scale spatial designSilicon anodelithium storage performance

More Related Videos

In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries
11:25

In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries

Published on: November 10, 2014

16.4K
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

Related Experiment Videos

Last Updated: Mar 30, 2026

Non-aqueous Electrode Processing and Construction of Lithium-ion Coin Cells
12:28

Non-aqueous Electrode Processing and Construction of Lithium-ion Coin Cells

Published on: February 1, 2016

22.4K
In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries
11:25

In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries

Published on: November 10, 2014

16.4K
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

Area of Science:

  • Materials Science
  • Electrochemistry
  • Nanotechnology

Background:

  • Silicon anodes offer high capacity for lithium-ion batteries but suffer from poor conductivity and volume expansion.
  • Existing strategies struggle to balance stability and performance for silicon anodes.

Purpose of the Study:

  • To develop a novel dual-carbon encapsulation strategy for silicon anodes.
  • To enhance the electronic conductivity and structural integrity of silicon anodes.
  • To improve the overall lithium storage performance and cycle life of batteries.

Main Methods:

  • Fabrication of a core-shell structure using zeolite imidazolate framework-8 (ZIF-8) and polymerized dopamine (PDA).
  • Incorporation of silicon nanoparticles within the ZIF-8 core.
  • Annealing process to form nitrogen-doped carbon layers and a hollow interior.

Main Results:

  • The composite anode demonstrated enhanced charge-transfer kinetics and electrode integrity.
  • Achieved a specific capacity of 1099.5 mAh g⁻¹ after 350 cycles.
  • Exhibited excellent rate capability with 685.6 mAh g⁻¹ at 5.0 A g⁻¹.

Conclusions:

  • The dual-carbon encapsulation strategy effectively addresses silicon anode limitations.
  • This approach offers a generalizable method for improving other electrode materials.
  • The study presents a promising pathway for high-performance lithium-ion batteries.