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

Effects of Temperature on Free Energy02:11

Effects of Temperature on Free Energy

27.8K
The spontaneity of a process depends upon the temperature of the system. Phase transitions, for example, will proceed spontaneously in one direction or the other depending upon the temperature of the substance in question. Likewise, some chemical reactions can also exhibit temperature-dependent spontaneities. To illustrate this concept, the equation relating free energy change to the enthalpy and entropy changes for the process is considered:
27.8K
Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

781
Atomization, converting samples into gas-phase atoms and ions, is essential for atomic spectroscopy. The flame temperature required for atomization affects the efficiency of the atomic spectroscopic methods by increasing the atomization efficiency and the relative population of the excited and ground states.
At thermal equilibrium, the relative populations of excited and ground state atoms can be estimated using the Maxwell–Boltzmann distribution. For example, an increase in temperature...
781
Effect of Temperature Change on Reaction Rate02:28

Effect of Temperature Change on Reaction Rate

4.8K
The Arrhenius equation,
4.8K
Thermosensation01:43

Thermosensation

33.4K
Peripheral thermosensation is the perception of external temperature. A change in temperature (on the surface of the skin and other tissues) is detected by a family of temperature-sensitive ion channels called Transient Receptor Potential, or TRP, receptors. These receptors are located on free nerve endings. Those detecting cold temperatures are closer to the surface of the skin than the nerve endings detecting warmth. These thermoTRP channels, while temperature selective, have relatively...
33.4K
Trends in Lattice Energy: Ion Size and Charge02:54

Trends in Lattice Energy: Ion Size and Charge

26.3K
An ionic compound is stable because of the electrostatic attraction between its positive and negative ions. The lattice energy of a compound is a measure of the strength of this attraction. The lattice energy (ΔHlattice) of an ionic compound is defined as the energy required to separate one mole of the solid into its component gaseous ions. For the ionic solid sodium chloride, the lattice energy is the enthalpy change of the process:
26.3K
Temperature Dependence on Reaction Rate02:55

Temperature Dependence on Reaction Rate

88.0K
The Collision Theory
Atoms, molecules, or ions must collide before they can react with each other. Atoms must be close together to form chemical bonds. This premise is the basis for a theory that explains many observations regarding chemical kinetics, including factors affecting reaction rates.
The collision theory is based on the postulates that (i) the reaction rate is proportional to the rate of reactant collisions, (ii) the reacting species collide in an orientation allowing contact between...
88.0K

You might also read

Related Articles

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

Sort by
Same author

Computer-Assisted Analytical Workflows for Natural Product Dereplication, Structure Elucidation, and Bioactivity-Oriented Prioritization.

Analytical chemistry·2026
Same author

Moxibustion Modulates ALOX15-Mediated Lipid Peroxidation to Inhibit Ferroptosis in Synovial Inflammatory Injury of Rheumatoid Arthritis.

Mediators of inflammation·2026
Same author

Preclinical toxicological evaluation of 7-methoxy-3-Phenyl-4H-Chromen-4-one: Acute and sub-acute oral toxicity with histopathological correlation.

Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association·2026
Same author

Coplanar indoline-functionalized fullerene with elevated LUMO level for tin halide perovskite photovoltaics.

Chemical communications (Cambridge, England)·2026
Same author

Chemo-Diversity Landscape Using Physico-Biochemical, Elemental, and Metabolic Profiling in Different Stages and Accessions of <i>Madhuca longifolia</i> Flowers for Unveiling Their Processing Value and Utilization.

Molecules (Basel, Switzerland)·2026
Same author

Lignin-Based Hydrogels for Sustainable Agriculture: Extraction, Design, and Applications.

ACS environmental Au·2026

Related Experiment Video

Updated: Dec 22, 2025

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation
10:41

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation

Published on: July 18, 2018

16.0K

Double-Edged Effect of Temperature on Lithium Dendrites.

Bairav Sabarish Vishnugopi1, Feng Hao1, Ankit Verma1

  • 1School of Mechanical Engineering, Purdue University, West Lafayette, Indiana 47907, United States.

ACS Applied Materials & Interfaces
|May 5, 2020
PubMed
Summary

Uniform heat suppresses lithium dendrites in batteries by enhancing ion transport and surface diffusion. Localized heat, however, accelerates dendrite growth, highlighting critical safety limits for thermal management in energy storage.

Keywords:
dendrite suppressionelectrodeposition stabilityelectrolyte transportlocal hot spotsurface diffusionthermal field

More Related Videos

Identification and Quantification of Decomposition Mechanisms in Lithium-Ion Batteries; Input to Heat Flow Simulation for Modeling Thermal Runaway
11:25

Identification and Quantification of Decomposition Mechanisms in Lithium-Ion Batteries; Input to Heat Flow Simulation for Modeling Thermal Runaway

Published on: March 7, 2022

5.1K
Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature
11:04

Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature

Published on: December 20, 2016

13.3K

Related Experiment Videos

Last Updated: Dec 22, 2025

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation
10:41

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation

Published on: July 18, 2018

16.0K
Identification and Quantification of Decomposition Mechanisms in Lithium-Ion Batteries; Input to Heat Flow Simulation for Modeling Thermal Runaway
11:25

Identification and Quantification of Decomposition Mechanisms in Lithium-Ion Batteries; Input to Heat Flow Simulation for Modeling Thermal Runaway

Published on: March 7, 2022

5.1K
Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature
11:04

Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature

Published on: December 20, 2016

13.3K

Area of Science:

  • Materials Science
  • Electrochemistry
  • Energy Storage

Background:

  • Lithium metal batteries are crucial for next-generation energy storage but face challenges with dendrite formation.
  • Thermal management strategies show varied effects on lithium electrodeposition morphology, necessitating a deeper understanding.

Purpose of the Study:

  • To elucidate the physical mechanisms behind thermally activated lithium electrodeposition.
  • To investigate how uniform versus localized thermal fields influence dendrite growth.

Main Methods:

  • Mesoscale analysis of lithium electrodeposition under controlled thermal conditions.
  • Investigation of electrolyte transport and surface self-diffusion dynamics.

Main Results:

  • A uniform thermal field (around 75°C) suppresses dendrites by enhancing transport and diffusion, even at high rates.
  • Localized thermal fields increase localized current density, leading to needle dendrite formation.
  • Defined safety limits for thermal conditions that trigger dendrite growth were established.

Conclusions:

  • Elevating cell temperature can aid stable electrodeposition but requires careful thermal field management.
  • Understanding electrochemical-thermal coupling is vital for safe and high-performance lithium metal batteries.