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Quantitative Correlation of Droplets on Galvanic-Coupled Arrays with Response Current by Image Processing
Moataz Mekawy1, Eiji Terada1,2, Shinji Inoue1
1National Institute for Materials Science, 1-1, Namiki, Tsukuba 305-0044, Japan.
ACS Omega
|November 22, 2021
Summary
This study presents a novel moisture sensor for detecting small water amounts. The sensor
Area of Science:
- Materials Science
- Sensor Technology
- Microfluidics
Background:
- Accurate detection of trace moisture is vital for applications like dew condensation monitoring and biological fluid analysis.
- Existing methods for micro-volume water detection can be complex or time-consuming.
Purpose of the Study:
- To develop and validate a microgalvanic cell-based moisture sensor for quantifying slight amounts of water.
- To investigate the relationship between sensor response current and water droplet geometry.
Main Methods:
- Fabrication of a moisture sensor using narrow metal arrays in a microgalvanic cell configuration.
- Simultaneous recording of sensor output current and microscopic imaging of water droplets.
- Analysis of droplet parameters using manual methods, ImageJ, and a deep learning approach for image processing.
Main Results:
- The sensor's response current positively correlates with the total projected area of water droplets bridging the sensor's metal arrays.
- A strong linear correlation was observed between the response current and the total volume of bridging water droplets.
- Deep learning image analysis significantly accelerated droplet quantification (1/1000th of manual time) with high accuracy (90-100%).
Conclusions:
- The developed microgalvanic moisture sensor effectively estimates the presence and volume of trace water.
- The sensor's response is reliably linked to droplet geometry, offering a practical solution for micro-water detection.

