Affiliation:
1. School of Engineering , School of Engineering , Canada
2. Mechanical Engineering Department , Université du Québec en Abitibi-Témiscamingue , Canada
3. Electric Engineering Department , Université du Québec en Abitibi-Témiscamingue , Canada
Abstract
Abstract
Every year hundreds of serious accidents and catastrophic are accompanied by mining sector services as disaster, flooding, and demolition. To reduce the severity of the results such as high death numbers, lost communication inner and out mining, we have to find an easy way to improve communication means during that problems. In this paper, we reach out to fabricate durable, flexible, and wearable chaps, in addition to an easier carrier with highly efficient receiving and sending a signal at 2.4 GHz broad wide band. By doping a bunch of unique conductive metals (silver, copper, and gallium indium alloy) assembled on Graphene, its integration inside Polydimethylsiloxane to be future applicable antenna. Furthermore, we studied the physical and electric properties of a composite including Electrochemical Impedance properties (EIS), cyclic voltammetry (CV), and its thermal stability chip (DSC), as well as, using Transmission electron microscopy (TEM), and, scanning electron microscopy (SEM) techniques to clarify the surface morphology of fabricated materials. In addition to various measurements had been carried out such as Ultraviolet-visible, inductively coupled plasma (ICP) spectroscopy, and Energy-dispersive X-ray spectroscopy (EDX) to reinforce and elucidate the solid-state of ions inside fabricated Antenna. On the other hand, throughout stress-strain for the stretchability of fabricated is expanded to 30% of its original length, in addition to thermal stability reached to 485°C compared to pure PDMS substrate, with enhancing electric conductivity of composite ship.
Reference82 articles.
1. 1. Zheng, J., Juha. A., Asko S., Makela T., Ari A., and Raisanen A. V. (2018): Roll-to-roll reverse offset printing of millimeter-wave transmission lines and antennas on flexible substrates. 12th European Conference on Antennas and Propagation (EuCAP 2018), 84-4.
2. 2. Subramanian, V. (2005). Progress toward development of all-printed RFID tags: materials, processes, and devices. Proceedings of the IEEE 93.7 1330-1338.10.1109/JPROC.2005.850305
3. 3. Zhan, Y., Yongfeng, M & Lirong, Z (2014). Materials capability and device performance in flexible electronics for the Internet of Things. Journal of Materials Chemistry C 2 (7) 1220-1232.10.1039/C3TC31765J
4. 4. Wang, X., Lu, X., Liu, B., Chen, D., Tong, Y., & Shen, G. (2014). Flexible energy-storage devices: design consideration and recent progress. Advanced Materials, 26(28), 4763-4782.10.1002/adma.20140091024913891
5. 5. Tobjörk, D., & Österbacka, R. (2011). Paper electronics. Advanced Materials, 23(17), 1935-1961.10.1002/adma.20100469221433116
Cited by
1 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