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

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications05:33

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications

22.2K
Lithium ion batteries employ flammable and volatile organic electrolytes that are suitable for ambient temperature applications. A safer alternative to organic electrolytes are solid polymer batteries. Solid polymer batteries operate safely at high temperatures (>120 °C), thus making them applicable to high temperature applications such as deep oil drilling and hybrid electric vehicles. This paper will discuss (a) the polymer synthesis, (b) the polymer conduction mechanism, and (c)...
22.2K
Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques10:03

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

26.0K
We describe the use of synchrotron X-ray absorption spectroscopy (XAS) and X-ray diffraction (XRD) techniques to probe details of intercalation/deintercalation processes in electrode materials for Li-ion and Na-ion batteries. Both in situ and ex situ experiments are used to understand structural behavior relevant to the operation of...
26.0K
Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries10:41

Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries

38.7K
Three-electrode cells are useful in studying the electrochemistry of lithium-ion batteries. Such an electrochemical setup allows the phenomena associated with the cathode and anode to be decoupled and examined independently. Here, we present a guide for construction and use of a three-electrode coin cell with emphasis on lithium plating...
38.7K
Focused Ion Beam Fabrication of LiPON-based Solid-state Lithium-ion Nanobatteries for In Situ Testing10:58

Focused Ion Beam Fabrication of LiPON-based Solid-state Lithium-ion Nanobatteries for In Situ Testing

10.6K
A protocol for the fabrication of electrochemically active LiPON-based solid-state lithium-ion nanobatteries using a focused ion beam is...
10.6K
In Situ Neutron Powder Diffraction Using Custom-made Lithium-ion Batteries11:25

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

16.2K
We describe the design and construction of an electrochemical cell for the examination of electrode materials using in situ neutron powder diffraction (NPD). We briefly comment on alternate in situ NPD cell designs and discuss methods for the analysis of the corresponding in situ NPD data produced using this...
16.2K
Preparation of Graphene Liquid Cells for the Observation of Lithium-ion Battery Material10:53

Preparation of Graphene Liquid Cells for the Observation of Lithium-ion Battery Material

9.5K
Here, we present a protocol for the fabrication and preparation of a graphene liquid cell for in situ transmission electron microscopy observation, along with a synthesis of electrode materials and electrochemical battery cell...
9.5K

You might also read

Related Articles

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

Sort by
Same author

A Fractional-Derivative Multi-Kernel Adaptive Learning Approach for Remaining Useful Life Prediction of Rotating Machinery.

Sensors (Basel, Switzerland)·2026
Same author

Differential effects of dietary protein sources on nitrogen metabolism and ileal microbiota in pigs correlated with amino acid release rates.

Journal of animal science and biotechnology·2026
Same author

Advanced Characterization of Phase Separation in HDPE/COC Blends: From Raw Materials to Industrial Products Using Co-localized AFM-Raman.

Microscopy and microanalysis : the official journal of Microscopy Society of America, Microbeam Analysis Society, Microscopical Society of Canada·2026
Same author

Roles of Anion and Cation Doping in g-C<b><sub>3</sub></b>N<b><sub>4</sub></b> as Artificial SEI for Regulating Interfacial Zn<b><sup>2+</sup></b> Deposition in Aqueous Zinc Metal Anodes.

Langmuir : the ACS journal of surfaces and colloids·2026
Same author

Synergistic modulation of gluten aggregation by d-tagatose, probiotic-modified wheat fiber, and vital wheat gluten toward high-quality, low-glycemic index toast.

International journal of biological macromolecules·2026
Same author

Dietary Interventions Targeting Maternal Obesity: Intergenerational Effects, Mechanisms, and Translational Insights.

Current nutrition reports·2026

Related Experiment Video

Updated: Jan 20, 2026

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

22.2K

Fully Integrated Design of a Stretchable Solid-State Lithium-Ion Full Battery.

Xi Chen1, Haijian Huang1, Long Pan1

  • 1Laboratory for Multifunctional Materials, Department of Materials, ETH Zürich, Vladimir-Prelog-Weg 5, Zürich, 8093, Switzerland.

Advanced Materials (Deerfield Beach, Fla.)
|September 7, 2019
PubMed
Summary

Researchers developed a fully stretchable solid-state lithium-ion battery for flexible electronics. This innovative design maintains functionality under significant mechanical stress, enabling new wearable applications.

Keywords:
composite current collectorshydrogel electrolytessolid-statestretchable batteries

More Related Videos

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

26.0K
Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries
10:41

Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries

Published on: May 22, 2018

38.7K

Related Experiment Videos

Last Updated: Jan 20, 2026

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

22.2K
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

26.0K
Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries
10:41

Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries

Published on: May 22, 2018

38.7K

Area of Science:

  • Materials Science
  • Electrochemistry
  • Solid-State Batteries

Background:

  • Flexible electronic devices and wearable systems require power sources with adaptable mechanical properties.
  • Conventional batteries lack the necessary stretchability and durability for integration into elastic systems.
  • The development of stretchable solid-state batteries is crucial for advancing portable and wearable electronics.

Purpose of the Study:

  • To introduce a novel, fully stretchable solid-state lithium-ion battery.
  • To demonstrate the mechanical compliance and electrochemical performance of the stretchable battery components.
  • To validate the battery's functionality under various mechanical deformations.

Main Methods:

  • Fabrication of a stretchable current collector using Ag microflakes on a carbon-polymer composite.
  • Integration of active materials with the elastic current collector to create stretchable electrodes.
  • Development of a stretchable polyacrylamide-"water-in-salt" electrolyte with high ionic conductivity.
  • Assembly of all-stretchable components into a thin-film solid-state lithium-ion full cell.

Main Results:

  • Achieved a stretchable current collector with low sheet resistance (≈2.7 Ω □-1) at 100% strain.
  • Developed a polyacrylamide-"water-in-salt" electrolyte with ionic conductivity of 10-3–10-2 S cm-1 and ≈300% stretchability.
  • Demonstrated a functional solid-state lithium-ion full cell that operates under stretching, bending, and twisting.
  • Maintained a reversible capacity of 28 mAh g-1 and energy density of 20 Wh kg-1 after 50 cycles at 50% strain.

Conclusions:

  • The developed solid-state lithium-ion battery exhibits excellent mechanical stretchability and electrochemical performance.
  • This battery design is suitable for integration into flexible electronic devices and elastic wearable systems.
  • The research paves the way for robust, deformable energy storage solutions for next-generation electronics.