Publication | Closed Access
High-Performance, Transparent, and Stretchable Electrodes Using Graphene–Metal Nanowire Hybrid Structures
651
Citations
41
References
2013
Year
EngineeringElectronic SkinFlexible SensorHybrid ElectrodesGraphene NanomeshesHybrid NanostructuresCarbon-based MaterialNanoelectronicsStretchable ElectronicsBiomedical DevicesHybrid MaterialsBio-electronic InterfacesMaterials ScienceElectrical EngineeringWearable ElectronicsStretchable ElectrodesBiomedical SensorsElectronic MaterialsFlexible ElectronicsFlexible SensorsApplied PhysicsNano Electro Mechanical SystemGrapheneGraphene Nanoribbon
Transparent electrodes that can remain electrically conductive and stable under large mechanical deformations are highly desirable for applications in flexible and wearable electronics. This paper describes a comprehensive study of the electrical, optical, and mechanical properties of hybrid nanostructures based on two-dimensional graphene and networks of one-dimensional metal nanowires, and their use as transparent and stretchable electrodes. Low sheet resistance (33 Ω/sq) with high transmittance (94% in visible range), robust stability against electric breakdown and oxidation, and superb flexibility (27% in bending strain) and stretchability (100% in tensile strain) are observed, and these multiple functionalities of the hybrid structures suggest a future promise for next generation electronics. The use of hybrid electrodes to fabricate oxide semiconductor transistors and single-pixel displays integrated on wearable soft contact lenses with in vivo tests are demonstrated.
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