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

Concept of Resonance and its Characteristics01:19

Concept of Resonance and its Characteristics

5.5K
If a driven oscillator needs to resonate at a specific frequency, then very light damping is required. An example of light damping includes playing piano strings and many other musical instruments. Conversely, to achieve small-amplitude oscillations as in a car's suspension system, heavy damping is required. Heavy damping reduces the amplitude, but the tradeoff is that the system responds at more frequencies. Speed bumps and gravel roads prove that even a car's suspension system is not...
5.5K
Sound Waves: Resonance01:14

Sound Waves: Resonance

2.9K
Resonance is produced depending on the boundary conditions imposed on a wave. Resonance can be produced in a string under tension with symmetrical boundary conditions (i.e., has a node at each end). A node is defined as a fixed point where the string does not move. The symmetrical boundary conditions result in some frequencies resonating and producing standing waves, while other frequencies interfere destructively. Sound waves can resonate in a hollow tube, and the frequencies of the sound...
2.9K
Design Example: Underdamped Parallel RLC Circuit01:17

Design Example: Underdamped Parallel RLC Circuit

450
Consider designing an oscillator circuit, a crucial component in various electronic devices and systems. The objective is to create an oscillator circuit with specific characteristics: a damped natural frequency of 4 kHz and a damping factor of 4 radians per second. To accomplish this, a parallel RLC circuit is employed, known for its ability to sustain oscillations at a resonant frequency. In this case, the damping factor is pivotal in achieving the desired performance.
Starting with a fixed...
450
Resonance in an AC Circuit01:26

Resonance in an AC Circuit

2.2K
The property of an inductor makes it resist any change in the current passing through it, while the property of a capacitor is to build up the charge across its terminals. Hence, if an inductor and capacitor are connected in series, they have opposite effects on the relative phase between current and voltage. The current through the circuit undergoes forced oscillation at the frequency of the source. The resistance term in an R-L-C circuit acts as a damping term because power is dissipated...
2.2K
Characteristics of Series Resonant Circuit01:24

Characteristics of Series Resonant Circuit

377
Series resonance occurs in a circuit containing inductive (L), capacitive (C), and resistive (R) elements connected sequentially. At the resonance frequency, the inductive and capacitive reactances are equal in magnitude but opposite in sign, effectively canceling each other. This causes the circuit's impedance is minimal, primarily determined by the resistance R. The resonant frequency of an RLC circuit is defined as:
377
Parallel Resonance01:23

Parallel Resonance

328
The parallel RLC circuit is an arrangement where the resistor (R), inductor (L), and capacitor (C) are all connected to the same nodes and, as a result, share the same voltage across them. The parallel RLC circuit is analyzed in terms of admittance (Y), which reflects the ease with which current can flow. The admittance is given by:
328

You might also read

Related Articles

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

Sort by
Same author

Social Networking Service Usage Behaviors and Loneliness Among Adults in Seoul, South Korea: A Population-based Cross-sectional Study.

Journal of preventive medicine and public health = Yebang Uihakhoe chi·2026
Same author

Marital Satisfaction and Frailty in Later Life: Asymmetric, Gendered, and Distributional Associations.

Journal of applied gerontology : the official journal of the Southern Gerontological Society·2026
Same author

Low-dose Intraventricular Recombinant Tissue Plasminogen Activator (rtPA) Priming Combined with Neuroendoscopic Lavage and Continuous Ventricular Irrigation for Severe Preterm Intraventricular Hemorrhage : A Technical Note.

Journal of Korean Neurosurgical Society·2026
Same author

Explainable VQA-based ladder safety monitoring for fall-risk prevention on construction sites.

Journal of safety research·2026
Same author

Wireless, battery-free wearable optoelectronic-colorimetric microfluidic sensor for multiplex sweat analysis.

Device·2026
Same author

Strain-resilient intrinsically stretchable electrochemical biointerfaces.

Science (New York, N.Y.)·2026

Related Experiment Video

Updated: Nov 2, 2025

A Polymer-based Piezoelectric Vibration Energy Harvester with a 3D Meshed-Core Structure
09:51

A Polymer-based Piezoelectric Vibration Energy Harvester with a 3D Meshed-Core Structure

Published on: February 20, 2019

25.7K

Enhancing Li Ion Battery Performance by Mechanical Resonance.

Dana Jin, Hyeonsoo Kang, Hyung Wan Do

  • 1Center for Nanomedicine, Institute for Basic Science (IBS), Seoul 03722, Korea.

Nano Letters
|June 7, 2021
PubMed
Summary

Mechanical resonant vibration enhances lithium-ion battery performance by improving electrolyte wettability. This simple, non-electrochemical method boosts capacity, rate capability, and stability for safer batteries.

Keywords:
ionic liquid electrolytelithium ion batterypolyolefin separatorresonant vibration-induced wetting

More Related Videos

Author Spotlight: Optimization of Airflow Velocities in Battery Cooling Systems for Enhanced Thermal Performance and Reduced Energy Consumption
10:36

Author Spotlight: Optimization of Airflow Velocities in Battery Cooling Systems for Enhanced Thermal Performance and Reduced Energy Consumption

Published on: November 3, 2023

1.8K
Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering
07:55

Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering

Published on: April 17, 2018

13.0K

Related Experiment Videos

Last Updated: Nov 2, 2025

A Polymer-based Piezoelectric Vibration Energy Harvester with a 3D Meshed-Core Structure
09:51

A Polymer-based Piezoelectric Vibration Energy Harvester with a 3D Meshed-Core Structure

Published on: February 20, 2019

25.7K
Author Spotlight: Optimization of Airflow Velocities in Battery Cooling Systems for Enhanced Thermal Performance and Reduced Energy Consumption
10:36

Author Spotlight: Optimization of Airflow Velocities in Battery Cooling Systems for Enhanced Thermal Performance and Reduced Energy Consumption

Published on: November 3, 2023

1.8K
Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering
07:55

Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering

Published on: April 17, 2018

13.0K

Area of Science:

  • Materials Science
  • Electrochemistry
  • Mechanical Engineering

Background:

  • Developing safe and high-performance lithium-ion batteries (LIBs) requires advancements in anodes, cathodes, and electrolytes.
  • Electrolyte wetting of battery separators is crucial for efficient ion transport but is thermodynamically limited.
  • Current research focuses on electrochemical methods for improving LIB safety and performance.

Purpose of the Study:

  • To investigate the application of mechanical resonant vibration to enhance electrolyte wettability in LIB separators.
  • To explore a novel, non-electrochemical approach for improving LIB performance and safety.

Main Methods:

  • Applying mechanical resonant vibration to LIB separators to induce capillary waves on the electrolyte surface.
  • Utilizing inertia force generated by resonant vibration to enhance electrolyte infiltration into porous separators.
  • Evaluating LIB performance metrics including specific capacity, rate capability, and cycling stability.

Main Results:

  • Mechanical resonant vibration significantly increased electrolyte wettability on the separator.
  • The vibration-induced wetting enhanced Li ion transport, leading to improved LIB performance.
  • LIBs utilizing this mechanical approach demonstrated high specific capacity, excellent rate capability, and superior cycling stability.

Conclusions:

  • Mechanical resonant vibration is a promising strategy for enhancing LIB performance and safety.
  • This non-electrochemical method offers a simple yet effective way to improve electrolyte wetting and ion transport.
  • The findings suggest a new direction for developing safer LIBs with liquid electrolytes.