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

Equipments Used to Measure Body Temperature01:13

Equipments Used to Measure Body Temperature

2.1K
Body temperature can be assessed using various devices and measured in Celsius or Fahrenheit.
Glass-bulb Thermometer:
Glass-bulb thermometers are hollow glass tubes with a bulb tip containing liquid such as ethanol or mercury. Historically, glass bulb mercury thermometers were the standard device to measure body temperature. Today, mercury thermometers are prohibited in many countries due to the hazardous effects of mercury and the risk of exposure if the glass bulb breaks. In general,...
2.1K
Assessing Body Temperature - Oral01:14

Assessing Body Temperature - Oral

2.0K
Here are the steps to accurately measure oral temperature using an electronic thermometer:
Step 1:
Start by practicing proper hand hygiene to prevent the spread of microorganisms.
Step 2:
Take the thermometer out of the charging unit, switch it on, and wait for the ready sign.
Step 3:
Gently slide the probe cover until a click is heard. This simple action prevents cross-contamination and ensures the correct placement of the probe cover.
Step 4:
Instruct the patient to open their mouth and place...
2.0K

You might also read

Related Articles

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

Sort by
Same author

Aerosol Jet Printed Ion-Selective Electrodes for Potassium Detection.

Sensors (Basel, Switzerland)·2026
Same author

Recent Advances in Printed Chipless Passive Inductively Coupled LC-Based Telemetric Systems for Smart Products: A Scoping Review.

Sensors (Basel, Switzerland)·2026
Same author

Large Language Model-Based Agents for Physical Activity and Cognitive Training: Scoping Review.

JMIR AI·2026
Same author

New Insights on Hydration Monitoring in Elderly Patients by Interdigitated Wearable Sensors.

Sensors (Basel, Switzerland)·2025
Same author

PCA- and PLSR-Based Machine Learning Model for Prediction of Urea-N Content in Heterogeneous Soils Using Near-Infrared Spectroscopy.

Sensors (Basel, Switzerland)·2025
Same author

Understanding the Structure-Function Relationship through 3D Imaging and Biomechanical Analysis: A Novel Methodological Approach Applied to Anterior Cruciate Ligaments.

Biomimetics (Basel, Switzerland)·2024

Related Experiment Video

Updated: May 1, 2026

Quantitative Autonomic Testing
11:40

Quantitative Autonomic Testing

Published on: July 19, 2011

58.4K

Printed Sensors for Quantifying Electrodermal Activity and Sweat Rate: A Review.

Batoul Hosseinzadeh1, Sarah Tonello1, Nicola Francesco Lopomo2

  • 1Department of Information Engineering, University of Brescia, Via Branze, 38, 25123 Brescia, Italy.

Sensors (Basel, Switzerland)
|November 27, 2025
PubMed
Summary

Printed electronics offer a scalable and low-cost method for creating wearable sensors. These advanced electrodermal activity (EDA) and sweat monitoring devices improve physiological signal quality for personalized health insights.

Keywords:
electrodermal activityprinted sensorssweat monitoring

More Related Videos

A Detailed Protocol for Perspiration Monitoring Using a Novel, Small, Wireless Device
05:32

A Detailed Protocol for Perspiration Monitoring Using a Novel, Small, Wireless Device

Published on: November 24, 2016

8.2K
Conformable Wearable Electrodes: From Fabrication to Electrophysiological Assessment
10:03

Conformable Wearable Electrodes: From Fabrication to Electrophysiological Assessment

Published on: July 22, 2022

4.9K

Related Experiment Videos

Last Updated: May 1, 2026

Quantitative Autonomic Testing
11:40

Quantitative Autonomic Testing

Published on: July 19, 2011

58.4K
A Detailed Protocol for Perspiration Monitoring Using a Novel, Small, Wireless Device
05:32

A Detailed Protocol for Perspiration Monitoring Using a Novel, Small, Wireless Device

Published on: November 24, 2016

8.2K
Conformable Wearable Electrodes: From Fabrication to Electrophysiological Assessment
10:03

Conformable Wearable Electrodes: From Fabrication to Electrophysiological Assessment

Published on: July 22, 2022

4.9K

Area of Science:

  • Biomedical Engineering
  • Wearable Technology
  • Sensor Technology

Background:

  • Electrodermal activity (EDA) and sweat monitoring (SM) provide valuable neurological health insights.
  • Traditional setups are often bulky, limiting their integration into wearable devices.
  • Improving the reliability and understanding of EDA signals requires advanced monitoring techniques.

Purpose of the Study:

  • To review fabrication techniques, materials, and measurement methods for EDA and sweat monitoring electrodes.
  • To highlight the role of printed electronics in developing advanced wearable sensors.
  • To explore the potential of printed sensors for continuous, non-invasive health monitoring.

Main Methods:

  • Overview of principal techniques for fabricating EDA and sweat monitoring electrodes.
  • Analysis of materials and measurement methods used in sensor development.
  • Focus on the application of printing technologies for flexible, on-skin sensors.

Main Results:

  • Printed electronics enable scalable, low-cost, and customizable fabrication of flexible sensors.
  • Wearable sensors using printed electronics enhance adaptability and user comfort.
  • These technologies significantly improve physiological signal quality for health monitoring.

Conclusions:

  • Printed electronics are a key enabler for advanced wearable health monitoring devices.
  • The integration of printed sensors enhances the reliability and personalization of health insights.
  • This approach opens new opportunities for continuous, non-invasive physiological monitoring.