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

Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

792
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...
792
Preparation of Samples for Electron Microscopy01:20

Preparation of Samples for Electron Microscopy

6.6K
To be visualized by an electron microscope, either transmission or scanning, biological samples need to be fixed (stabilized) so the electron beam does not destroy them and dried thoroughly (desiccated/dehydrated) so the vacuum does not affect them. Fixation needs to be done as quickly as possible because the sample properties will start changing as soon as it is removed from its natural environment. For example, in a tissue sample, the oxygen levels begin decreasing, causing an altered...
6.6K
Temperature Measurement Sites01:14

Temperature Measurement Sites

3.0K
A thermometer measures body temperature. The common sites for measuring body temperature are the oral cavity, axillary region, temporal artery, and skin surface, such as the forehead, abdomen, and axilla. True core body temperature is assessed in the rectum, tympanic membrane, pulmonary artery, esophagus, and urinary bladder.
Oral: When assessing oral temperature, the thermometer tip should be placed under the tongue in the posterior sublingual pocket. It offers accurate readings and can be...
3.0K

You might also read

Related Articles

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

Sort by
Same author

Probing the structure of D<sub>2</sub>O ice layers on ALD-grown ZrO<sub>2</sub>, Al<sub>2</sub>O<sub>3</sub> and TiO<sub>2</sub> thin films by sum frequency generation (SFG) spectroscopy.

Faraday discussions·2026
Same author

Smart flying in challenging skies: How Red Kites adjust wind turbine micro- and meso-avoidance across weather and experience.

Scientific reports·2026
Same author

Valorization of pineapple leaf waste into Fe-Modified biochar for efficient H<sub>2</sub>S adsorption.

Bioresource technology·2026
Same author

Grand Challenges and Opportunities in Stimulated Dynamic and Resonant Catalysis.

ACS catalysis·2026
Same author

Synergy of Oxygen and Water in Ceria-Catalyzed Direct Conversion of Methane to Methanol under Continuous Flow.

ACS catalysis·2025
Same author

Femtosecond Laser Generation of LaCoO<sub>3</sub> Perovskite Nanocatalysts for Preferential CO Oxidation.

ACS applied nano materials·2025

Related Experiment Video

Updated: Dec 29, 2025

Advanced Experimental Methods for Low-temperature Magnetotransport Measurement of Novel Materials
10:36

Advanced Experimental Methods for Low-temperature Magnetotransport Measurement of Novel Materials

Published on: January 21, 2016

11.0K

A novel wireless sample temperature control system for field ion, field electron, and atom probe techniques.

Philipp Winkler1, Johannes Zeininger1, Maximilian Raab1

  • 1Institute of Materials Chemistry, TU Wien, 1060 Vienna, Austria.

The Review of Scientific Instruments
|February 5, 2020
PubMed
Summary

A new wireless temperature control system precisely manages small samples for field microscopy and atom probe analysis. This breakthrough enables detailed studies of surface reactions and nanocatalysis under high electric fields.

More Related Videos

Trapping of Micro Particles in Nanoplasmonic Optical Lattice
07:20

Trapping of Micro Particles in Nanoplasmonic Optical Lattice

Published on: September 5, 2017

6.9K
Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere
08:52

Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere

Published on: April 30, 2018

8.5K

Related Experiment Videos

Last Updated: Dec 29, 2025

Advanced Experimental Methods for Low-temperature Magnetotransport Measurement of Novel Materials
10:36

Advanced Experimental Methods for Low-temperature Magnetotransport Measurement of Novel Materials

Published on: January 21, 2016

11.0K
Trapping of Micro Particles in Nanoplasmonic Optical Lattice
07:20

Trapping of Micro Particles in Nanoplasmonic Optical Lattice

Published on: September 5, 2017

6.9K
Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere
08:52

Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere

Published on: April 30, 2018

8.5K

Area of Science:

  • Materials Science
  • Surface Science
  • Analytical Chemistry

Background:

  • Precise temperature control of small samples is crucial for field emission-based microscopy techniques.
  • Existing methods face challenges with micrometer- to nanometer-sized samples under high electric potentials.
  • Field Ion Microscopy (FIM), Field Electron Microscopy (FEM), and atom probe techniques require stable sample environments.

Purpose of the Study:

  • To design and implement a novel wireless sample temperature control system for FIM, FEM, and atom probe analyses.
  • To address the limitations of current temperature control methods for small samples in high electric field environments.
  • To demonstrate the system's efficacy in studying surface reactions and nanocatalysis.

Main Methods:

  • Development of a wireless data transmission system for real-time temperature monitoring and control.
  • Integration of the system with FIM and FEM setups.
  • Application of the system to study surface reactions in nanocatalysis case studies.

Main Results:

  • Successful design and construction of a functional wireless temperature control system.
  • Demonstration of precise temperature management for micrometer- to nanometer-sized samples.
  • Validation of the system's superior performance in FIM and FEM studies of surface reactions, particularly in nanocatalysis.

Conclusions:

  • The novel wireless temperature control system effectively overcomes longstanding challenges in sample temperature management for field emission techniques.
  • The system offers a versatile solution applicable to various experiments requiring specimens under high electric potential.
  • The demonstrated capabilities in nanocatalysis highlight the system's potential for advancing surface science research.