Quartz crystal microbalance coated with PEDOT–PSS/PVA nanofiber for a high-performance humidity sensor
-
Published:2019-07-16
Issue:2
Volume:8
Page:243-250
-
ISSN:2194-878X
-
Container-title:Journal of Sensors and Sensor Systems
-
language:en
-
Short-container-title:J. Sens. Sens. Syst.
Author:
Julian Trisna, Rianjanu AdityaORCID, Hidayat Shidiq Nur, Kusumaatmaja Ahmad, Roto Roto, Triyana KuwatORCID
Abstract
Abstract. Quartz crystal microbalance (QCM) coated with
poly(3,4-ethylenedioxythiophene) and polystyrene sulfonate mixed with polyvinyl
alcohol (PEDOT–PSS/PVA) nanofiber has been fabricated as a humidity sensor
using the electrospinning method. Three types of PEDOT–PSS/PVA nanofiber
sensors are fabricated with different needle-to-collector electrospinning
distances. The scanning electron microscope images confirm the presence of
beads in the nanofiber structure. The results show that the sensor mass
deposition increased with the decrease in needle-to-collector distance. The
best sensor performance is exhibited by the sample with medium
needle-to-collector distance (QCM NF 2). The QCM NF 2 nanofiber sensor shows
excellent sensitivity of up to 33.56 Hz per percentage point of relative humidity, with rapid
response (5.6 s) and recovery (3.5 s) times, good linearity, excellent
repeatability, low hysteresis, and long-term stability and response. The
QCM PEDOT–PSS/PVA nanofiber sensor provides a simple method to fabricate
high-performance humidity sensors.
Publisher
Copernicus GmbH
Subject
Electrical and Electronic Engineering,Instrumentation
Reference44 articles.
1. Adamyan, Z., Sayunts, A., Aroutiounian, V., Khachaturyan, E., Vrnata, M., Fitl, P., and Vlček, J.: Nanocomposite sensors of propylene glycol, dimethylformamide and formaldehyde vapors, J. Sens. Sens. Syst., 7, 31–41, https://doi.org/10.5194/jsss-7-31-2018, 2018. 2. Bae, Y. M., Lee, Y. H., Kim, H. S., Lee, D. J., Kim, S. Y., and Kim, H.-D.:
Polyimide-polyurethane/urea block copolymers for highly sensitive humidity
sensor with low hysteresis, J. Appl. Polym. Sci., 134, 1–11,
https://doi.org/10.1002/app.44973, 2017. 3. Beißner, S., Thies, J.-W., Bechthold, C., Kuhn, P., Thürmann, B., Dübel, S., and Dietzel, A.: Low-cost, in-liquid measuring system using a novel compact oscillation circuit and quartz-crystal microbalances (QCMs) as a versatile biosensor platform, J. Sens. Sens. Syst., 6, 341–350, https://doi.org/10.5194/jsss-6-341-2017, 2017. 4. Blank, T. A., Eksperiandova, L. P., and Belikov, K. N.: Recent trends of
ceramic humidity sensors development: A review, Sensor. Actuat. B-Chem.,
228, 416–442, https://doi.org/10.1016/j.snb.2016.01.015, 2016. 5. Chen, X., Chen, X., Li, N., Ding, X., and Zhao, X.: A QCM Humidity Sensors
Based on GO/Nafion Composite Films With Enhanced Sensitivity, IEEE Sens. J., 16,
8874–8883, https://doi.org/10.1109/JSEN.2016.2617122, 2016.
Cited by
29 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|