Liquid-Gated Transistors Based on Reduced Graphene Oxide for Flexible and Wearable Electronics

被引:49
作者
de Oliveira, Rafael Furlan [1 ]
Livio, Pietro Antonio [1 ]
Montes-Garcia, Veronica [1 ]
Ippolito, Stefano [1 ]
Eredia, Matilde [1 ]
Fanjul-Bolado, Pablo [2 ]
Gonzalez Garcia, Maria Begona [2 ]
Casalini, Stefano [1 ]
Samori, Paolo [1 ]
机构
[1] Univ Strasbourg, CNRS, ISIS UMR 7006, 8 Allee Gaspard Monge, F-67000 Strasbourg, France
[2] Metrohm DropSens SL, Ed CEEI,Parque Tecnol Asturias, Llanera 33428, Asturias, Spain
关键词
flexible electronics; lateral flow; liquid-gated transistors; reduced graphene oxide; wearable electronics; FIELD-EFFECT TRANSISTOR; ULTRATHIN FILMS; LARGE-AREA; REDUCTION; CARBON; TRANSPARENT; SENSOR; RAMAN; FABRICATION; OPERATION;
D O I
10.1002/adfm.201905375
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene is regarded as the ultimate material for future flexible, high-performance, and wearable electronics. Herein, a novel, robust, all-green, highly reliable (yield >= 99%), and upscalable technology is reported for wearable applications comprising reduced graphene oxide (rGO) as the electroactive component in liquid-gated transistors (LGTs). rGO is a formidable material for future flexible and wearable applications due to its easy processability, excellent surface reactivity, and large-area coverage. A novel protocol is established toward the high-yield fabrication of flexible rGO LGTs combining high robustness (>1.5 h of continuous operation) with state-of-the-art performances, being similar to those of their rigid counterparts operated under liquid gating, including field-effect mobility of approximate to 10(-1) cm(2) V-1 s(-1) and transconductance of approximate to 25 mu S. Permeable membranes have been proven crucial to operate flexible LGTs under mechanical stress with reduced amounts of solution (<20 mu L). Our rGO LGTs are operated in artificial sweat exploiting two different layouts based on lateral-flow paper fluidics. These approaches pave the road toward future real-time tracking of perspiration via a simple and cost-effective approach. The reported findings contribute to the robust and scalable production of novel graphene-based flexible devices, whose features fulfill the requirements of wearable electronics.
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页数:11
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