| Literature DB >> 29257085 |
Bin Zou1, Yunlong Guo2,3, Nannan Shen4, Anshan Xiao5, Mingjun Li6, Liang Zhu7, Pengbo Wan8, Xiaoming Sun9.
Abstract
Ultrasensitive room temperature real-time NO₂ sensors are highly desirable due to potential threats on environmental security and personal respiratory. Traditional NO₂ gas sensors with highly operated temperatures (200-600 °C) and limited reversibility are mainly constructed from semiconducting oxide-deposited ceramic tubes or inter-finger probes. Herein, we report the functionalized graphene network film sensors assembled on an electrospun three-dimensional (3D) nanonetwork skeleton for ultrasensitive NO₂ sensing. The functional 3D scaffold was prepared by electrospinning interconnected polyacrylonitrile (PAN) nanofibers onto a nylon window screen to provide a 3D nanonetwork skeleton. Then, the sulfophenyl-functionalized reduced graphene oxide (SFRGO) was assembled on the electrospun 3D nanonetwork skeleton to form SFRGO network films. The assembled functionalized graphene network film sensors exhibit excellent NO₂ sensing performance (10 ppb to 20 ppm) at room temperature, reliable reversibility, good selectivity, and better sensing cycle stability. These improvements can be ascribed to the functionalization of graphene with electron-withdrawing sulfophenyl groups, the high surface-to-volume ratio, and the effective sensing channels from SFRGO wrapping onto the interconnected 3D scaffold. The SFRGO network-sensing film has the advantages of simple preparation, low cost, good processability, and ultrasensitive NO₂ sensing, all advantages that can be utilized for potential integration into smart windows and wearable electronic devices for real-time household gas sensors.Entities:
Keywords: 3D scaffolds; electrospinning; gas sensors; graphene; ultrasensitive NO2 sensing
Year: 2017 PMID: 29257085 PMCID: PMC5751658 DOI: 10.3390/s17122954
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Scheme 1Schematic illustration for the fabrication of the sulfophenyl-functionalized reduced graphene oxide (SFRGO) network films by assembling the SFRGO onto an electrospun 3D nanonetwork skeleton.
Figure 1SEM images of (a) the electrospun polyacrylonitrile (PAN) nanofiber skeleton (inset: the high-resolution SEM image), (b) the wrapped SFRGO onto the PAN nanofiber skeleton (inset: the high-resolution SEM image). Photographs of (c) the electrospun PAN nanofibers on the nylon scaffold, and (d) the flexible SFRGO network films. The school badges are placed behind the film.
Figure 2The energy-dispersive X-ray spectroscopy (EDX) spectra of sulfophenyl-functionalized reduced graphene oxide (SFRGO).
Figure 3(a) The X-ray photoelectron spectroscopy (XPS) spectra of SFRGO. XPS spectra for (b) C 1s, (c) S2p, and (d) O 1s.
Figure 4Raman spectra of SFRGO and reduced graphene oxide (rGO).
Figure 5Sensing performance of the SFRGO network film devices to different concentrations of NO2, from 10 ppb to 20 ppm ((a) 10–100 ppb; (b) 100–1000 ppb; (c) 1 ppm–20 ppm).
Figure 6Gas sensing selectivity of the SFRGO network film devices to 10 ppm NO2 and 25 ppm methanol, 25 ppm ethanol, 25 ppm isopropanol, 25 ppm chlorine, and 50% relative humidity.
Figure 7The sensing repeatability for the SFRGO network film devices to 500 ppb NO2.