| Literature DB >> 35458255 |
Muhammad Tahir1, Muhammad Zeb1, Shahid Hussain1, Mahidur R Sarker2, Dil Nawaz Khan3, Fazal Wahab4, Sawal Hamid Md Ali5.
Abstract
In this paper, we report on the synthesis-via the wet chemical precipitation route method-and thin film characteristics of inorganic semiconductor, cuprous oxide (Cu2O) nanoparticles, for their potential application in enhancing the humidity-sensing properties of semiconducting polymer poly(9,9-dioctylfluorene) (F8). For morphological analysis of the synthesized Cu2O nanoparticles, transmission electron microscope (TEM) and scanning electron microscope (SEM) micrographs are studied to investigate the texture, distribution, shape, and sizes of Cu2O crystallites. The TEM image of the Cu2O nanoparticles exhibits somewhat non-uniform distribution with almost uniform shape and size having an average particle size of ≈24 ± 2 nm. Fourier transformed infrared (FTIR) and X-ray diffraction (XRD) spectra are studied to validate the formation of Cu2O nanoparticles. Additionally, atomic force microscopy (AFM) is performed to analyze the surface morphology of polymer-inorganic (F8-Cu2O) nanocomposites thin film to see the grain sizes, mosaics, and average surface roughness. In order to study the enhancement in sensing properties of F8, a hybrid organic-inorganic (F8-Cu2O) surface-type humidity sensor Ag/F8-Cu2O/Ag is fabricated by employing F8 polymer as an active matrix layer and Cu2O nanoparticles as a dopant. The Ag/F8-Cu2O/Ag device is prepared by spin coating a 10:1 wt% solution of F8-Cu2O nanocomposite on pre-patterned silver (Ag) electrodes on glass. The inter-electrode gap (≈5 μm) between Ag is developed by photolithography. To study humidity sensing, the Ag/F8-Cu2O/Ag device is characterized by measuring its capacitance (C) as a function of relative humidity (%RH) at two different frequencies (120 Hz and 1 kHz). The device exhibits a broad humidity sensing range (27-86%RH) with shorter response time and recovery time, i.e., 9 s and 8 s, respectively. The present results show significant enhancement in the humidity-sensing properties as compared to our previously reported results of Ag/F8/Ag sensor wherein the humidity sensing range was 45-78%RH with 15 s and 7 s response and recovery times, respectively. The improvement in the humidity-sensing properties is attributed to the potential use of Cu2O nanoparticles, which change the hydrophobicity, surface to volume ratio of Cu2O nanoparticles, as well as modification in electron polarizability and polarity of the F8 matrix layer.Entities:
Keywords: Cu2O nanoparticles; conducting polymer; humidity sensing; organic–inorganic nanocomposites; poly(9,9 dioctylfluorene) (F8)
Year: 2022 PMID: 35458255 PMCID: PMC9028022 DOI: 10.3390/polym14081503
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1(a) Molecular structure of F8, (b) Schematic structure of Ag/F8-Cu2O/Ag sensor, (c) Schematic diagram of self-developed humidity sensing set up.
Figure 2(a) TEM and (b) SEM images of Cu2O nanoparticles; (c) SEM and (d) AFM images of F8-Cu2O nanocomposite thin films.
Figure 3XRD spectra of (a) Cu2O nanoparticles; (b) F8-Cu2O nanocomposite.
Figure 4FTIR spectra of (a) Cu2O nanoparticles and (b) F8-Cu2O nanocomposite.
Bond dynamics in Cu2O and F8-Cu2O thin films.
| Energy Bands (cm−1) | Bonds Nature/Dynamics |
|---|---|
| 623–625 | Cu2O Vibration Mode |
| 957 | C-H Out-of-Plane Bending |
| 1468 | CH2Bending |
| 1670 | C=C Aromatic Ring Stretch |
| 3056 | C-H StretchingSP2Hybridization |
Figure 5(a) UV-Vis spectrum and (b) Tauc’s plot of Cu2O nanoparticles (c) UV-vis spectrum of F8 film.
Figure 6(a) Capacitance vs. relative humidity curve and (b) Hysteresis loop of Capacitance vs. relative humidity for Ag/F8-Cu2O/Ag sensor at 120 Hz.
Figure 7(a) Capacitance vs. relative humidity curve and (b) Hysteresis loop of Capacitance vs. relative humidity for Ag/F8-Cu2O/Ag sensor at 1 kHz.
Figure 8Response time and recovery time cycles of the Ag/F8-Cu2O/Ag sensor at 1 kHz.
Comparison of the humidity sensor’s parameters with previous works.
| Humidity | Frequency (Hz) | Sensing Range | Ratio of C/C0 | Response Time (s) | Recovery Time (s) | Ref. |
|---|---|---|---|---|---|---|
| Ag/F8/Ag | 120 | 30–75 | 4.0 | 15 | 7 | [ |
| 1000 | 50–80 | 1.2 | - | - | ||
| Ag/F8:CdSe QDs/Ag | 120 | 25–91 | 7.3 | 9 | 7 | [ |
| 1000 | 20–90 | 2.1 | - | - | ||
| Au/N-BuHHPDI/Au | 100 | 0–90 | 13 | 60 | 70 | [ |
| Ag/F8-Cu2O/Ag | 120 | 8–95 | 23.5 | - | - | Present work |
| 1000 | 8–95 | 5.8 | 9 | 7 |