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Multifunctional Ion-Sensitive Floating Gate Fin Field-Effect Transistor with Three-Dimensional Nanoseaweed Structure
Ying-Chun Shen1,2,3, Chien-Ping Wang4, Kun-Lin Liou4
1Department of Materials Science and Engineering, National Tsing Hua University, Hsinchu, 30013, Taiwan.
Small (Weinheim an Der Bergstrasse, Germany)
|November 25, 2021
Summary
A novel multifunctional ion-sensitive floating gate Fin field-effect transistor (ISFGFinFET) simultaneously detects hydrogen and sodium ions. This advanced sensor technology offers high sensitivity and adjustable performance for various ion detection applications.
Area of Science:
- Materials Science
- Electrical Engineering
- Chemical Sensing
Background:
- Floating gate Fin field-effect transistors (FGFETs) offer potential for sensitive ion detection.
- Existing ion sensors often lack multifunctionality or require complex fabrication.
- Enhancing sensing area and material selectivity are key to improving ion sensor performance.
Purpose of the Study:
- To demonstrate a multifunctional ion-sensitive floating gate Fin field-effect transistor (ISFGFinFET) for simultaneous hydrogen and sodium ion detection.
- To investigate methods for enhancing sensor sensitivity through structural design and material selection.
- To evaluate the performance and scalability of the developed ISFGFinFET sensor.
Main Methods:
- Fabrication of an ISFGFinFET integrating a FGFET with specific sensing films.
- Utilizing glancing angle deposition (GLAD) to create a nanoseaweed structure for increased surface area.
- Employing a calix[4]arene sensing film for sodium ion detection.
- Developing sensor arrays (3x3 pixels) and simulating larger arrays (16x16) with peripheral circuits.
Main Results:
- Achieved high sensitivity for hydrogen ion detection (266 mV/pH) using the nanoseaweed structure.
- Demonstrated significant sensitivity for sodium ion detection (432.7 mV/pNa) with the calix[4]arene film.
- Confirmed the capability of simultaneous detection of multiple ions.
- Showcased functional sensor arrays and simulated large-scale integration.
Conclusions:
- The ISFGFinFET is a promising multifunctional sensor for simultaneous detection of hydrogen and sodium ions.
- The proposed design, incorporating nanostructured surfaces and selective films, significantly enhances ion sensitivity.
- The sensor's performance is competitive with state-of-the-art ion sensors, with potential for scalable applications.

