Improved Transfer of Graphene for Gated Schottky-Junction, Vertical, Organic, Field-Effect Transistors

An improved process for graphene transfer was used to demonstrate high performance graphene enabled vertical organic field effect transistors (G-VFETs). The process reduces disorder and eliminates the polymeric residue that typically plagues transferred films. The method also allows for purposely cr...

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Veröffentlicht in:ACS nano 2012-10, Vol.6 (10), p.9095-9102
Hauptverfasser: Lemaitre, Maxime G, Donoghue, Evan P, McCarthy, Mitchell A, Liu, Bo, Tongay, Sefaattin, Gila, Brent, Kumar, Purushottam, Singh, Rajiv K, Appleton, Bill R, Rinzler, Andrew G
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Sprache:eng
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Zusammenfassung:An improved process for graphene transfer was used to demonstrate high performance graphene enabled vertical organic field effect transistors (G-VFETs). The process reduces disorder and eliminates the polymeric residue that typically plagues transferred films. The method also allows for purposely creating pores in the graphene of a controlled areal density. Transconductance observed in G-VFETs fabricated with a continuous (pore-free) graphene source electrode is attributed to modulation of the contact barrier height between the graphene and organic semiconductor due to a gate field induced Fermi level shift in the low density of electronic-states graphene electrode. Pores introduced in the graphene source electrode are shown to boost the G-VFET performance, which scales with the areal pore density taking advantage of both barrier height lowering and tunnel barrier thinning. Devices with areal pore densities of 20% exhibit on/off ratios and output current densities exceeding 106 and 200 mA/cm2, respectively, at drain voltages below 5 V.
ISSN:1936-0851
1936-086X
DOI:10.1021/nn303848k