» Articles » PMID: 36616998

Wide-Range Humidity-Temperature Hybrid Flexible Sensor Based on Strontium Titanate and Poly 3,4 Ethylenedioxythiophene Polystyrene Sulfonate for Wearable 3D-Printed Mask Applications

Overview
Journal Sensors (Basel)
Publisher MDPI
Specialty Biotechnology
Date 2023 Jan 8
PMID 36616998
Authors
Affiliations
Soon will be listed here.
Abstract

In this paper, we report a fast, linear wide-range hybrid flexible sensor based on a novel composite of strontium titanate (SrTiO) and poly 3,4 ethylenedioxythiophene polystyrene sulfonate (PEDOT: PSS) as a sensing layer. Inter-digitate electrodes (IDEs) were printed for humidity monitoring (finger: 250 µm; spacing: 140 µm; length: 8 mm) whilst a meander-based pattern was printed for the temperature measurement (meander thickness: 180 µm; spacing: 400 µm) on each side of the PET substrate using silver ink. Moreover, active layers with different concentration ratios were coated on the electrodes using a spray coating technique. The as-developed sensor showed an excellent performance, with a humidity measurement range of (10-90% RH) and temperature measurement range of (25-90 °C) with a fast response (humidity: 5 s; temperature: 4.2 s) and recovery time (humidity: 8 s; temperature: 4.4 s). The reliability of the sensor during mechanical bending of up to 5.5 mm was validated with a reliable performance. The sensor was also used in real-world applications to measure human respiration. For this, a suggested sensor-based autonomous wireless node was included in a 3D-printed mask. The manufactured sensor was an excellent contender for wearable and environmental applications because of its exceptional performance, which allowed for the simultaneous measurement of both quantities by a single sensing device.

References
1.
Shabnam L, Faisal S, Roy A, Haque E, Minett A, Gomes V . Doped graphene/Cu nanocomposite: A high sensitivity non-enzymatic glucose sensor for food. Food Chem. 2016; 221:751-759. DOI: 10.1016/j.foodchem.2016.11.107. View

2.
Jawad H, Nordin R, Gharghan S, Jawad A, Ismail M . Energy-Efficient Wireless Sensor Networks for Precision Agriculture: A Review. Sensors (Basel). 2017; 17(8). PMC: 5579920. DOI: 10.3390/s17081781. View

3.
Trung T, Lee N . Flexible and Stretchable Physical Sensor Integrated Platforms for Wearable Human-Activity Monitoringand Personal Healthcare. Adv Mater. 2016; 28(22):4338-72. DOI: 10.1002/adma.201504244. View

4.
Awais M, Khan M, Hassan A, Bae J, Chattha T . Printable Highly Stable and Superfast Humidity Sensor Based on Two Dimensional Molybdenum Diselenide. Sci Rep. 2020; 10(1):5509. PMC: 7099085. DOI: 10.1038/s41598-020-62397-x. View

5.
Vivekananthan V, Alluri N, Purusothaman Y, Chandrasekhar A, Selvarajan S, Kim S . Biocompatible Collagen Nanofibrils: An Approach for Sustainable Energy Harvesting and Battery-Free Humidity Sensor Applications. ACS Appl Mater Interfaces. 2018; 10(22):18650-18656. DOI: 10.1021/acsami.8b02915. View