Title :
A novel graphene-based inkjet-printed WISP-enabled wireless gas sensor
Author :
Le, Tuan-Vu ; Lakafosis, V. ; Kim, Sungho ; Cook, Byron ; Tentzeris, Manos M. ; Ziyin Lin ; Ching-Ping Wong
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
Oct. 29 2012-Nov. 1 2012
Abstract :
In this paper we demonstrate the design and development of a low-cost, self-powered, wireless sensor solution based on the WISP platform and utilizing thin films produced from environmentally friendly, water-based, inkjet printed graphene oxide (GO) ink. The sensor demonstrates good response to ammonia gas (NH3), yielding a 6% normalized resistance change within 15 minutes after exposure to a concentration of 500 ppm. In addition, excellent recovery time is achieved using the graphene thin films, with over 30% of material recovery observed within 5 minutes without exposure to high temperature or any UV treatments. In addition to reporting the first ever integration of inkjet-printed water soluble GO inks into low cost RF electronics fabricated on flexible substrates, we also bring gas sensing capabilities to RFID tags relying on purely wireless digital transmission of the sensed information. The introduction of mass producible, stable, environmentally friendly, inkjet printable GO on organic paper/Kapton substrates lays the foundation for the development of a wide range of new low-cost, high performance graphene-based devices, such as inkjet-printed diodes, capacitors and transistors.
Keywords :
ammonia; gas sensors; graphene; ink jet printing; radiofrequency identification; thin film sensors; wireless sensor networks; NH3; RFID tags; UV treatments; ammonia gas; capacitors; environmentally friendly graphene oxide ink; flexible substrates; graphene thin films; graphene-based inkjet-printed WISP-enabled wireless gas sensor; high performance graphene-based devices; inkjet printed graphene oxide ink; inkjet-printed diodes; inkjet-printed water soluble GO inks; low cost RF electronics; low-cost graphene-based devices; organic paper-Kapton substrates; time 15 min; time 5 min; transistors; water-based graphene oxide ink; wireless digital transmission; wireless identification and sensing platform; Graphene; Ink; Resistance; Sensors; Wireless communication; Wireless sensor networks; Gas sensing; RFID; WISP; graphene; inkjet printing;
Conference_Titel :
Microwave Conference (EuMC), 2012 42nd European
Conference_Location :
Amsterdam
Print_ISBN :
978-1-4673-2215-7
Electronic_ISBN :
978-2-87487-026-2