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Low-Power Graphene/ZnO Schottky UV Photodiodes with Enhanced Lateral Schottky Barrier Homogeneityopen access

Authors
Lee, YoungminKim, Deuk YoungLee, Sejoon
Issue Date
May-2019
Publisher
MDPI
Keywords
graphene; zinc oxide; Schottky photodiode; Schottky barrier homogeneity
Citation
NANOMATERIALS, v.9, no.5
Indexed
SCIE
SCOPUS
Journal Title
NANOMATERIALS
Volume
9
Number
5
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/8167
DOI
10.3390/nano9050799
ISSN
2079-4991
2079-4991
Abstract
The low-power, high-performance graphene/ZnO Schottky photodiodes were demonstrated through the direct sputter-growth of ZnO onto the thermally-cleaned graphene/SiO2/Si substrate at room temperature. Prior to the growth of ZnO, a thermal treatment of the graphene surface was performed at 280 degrees C for 10 min in a vacuum to desorb chemical residues that may serve as trap sites at the interface between graphene and ZnO. The device clearly showed a rectifying behavior with the Schottky barrier of approximate to 0.61 eV and an ideality factor of 1.16. Under UV illumination, the device exhibited the excellent photoresponse characteristics in both forward and reverse bias regions. When illuminating UV light with the optical power density of 0.62 mW/cm(2), the device revealed a high on/off current ratio of >10(3) even at a low bias voltage of 0.1 V. For the transient characteristics upon switching of UV light pulses, the device represented a fast and stable photoresponse (i.e., rise time: 0.16 s, decay time: 0.19 s). From the temperature-dependent current-voltage characteristics, such an outstanding photoresponse characteristic was found to arise from the enhanced Schottky barrier homogeneity via the thermal treatment of the graphene surface. The results suggest that the ZnO/graphene Schottky diode holds promise for the application in high-performance low-power UV photodetectors.
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