1994•Applied Physics LettersRequires access

Novel low-resistance ohmic contact to n-type GaAs using Cu3Ge

M. Osama Aboelfotoh, Chung-Han Lin, J. M. Woodall

Open publisher page 45 citations

Abstract

We show that ε1-Cu3Ge forms a low-resistance ohmic contact to n-type GaAs. The ε1-Cu3Ge contact exhibits a planar and abrupt interface and contact resistivity of 6.5×10−7 Ω cm2 which is considerably lower than that reported for Ge/Pd and AuGeNi contacts on n-type GaAs with similar doping concentrations (∼1×1017 cm−3). The contact is electrically stable during annealing at temperatures up to 450 °C. We also show that in the Ge/Cu/n-type GaAs system, the contact remains ohmic over a wide range of Ge concentration that extends from 15 to 40 at. %. n-channel GaAs metal–semiconductor field-effect transistors using the ε1-Cu3Ge ohmic contacts demonstrate a higher transconductance compared to devices with Ge/Pd and AuGeNi contacts.

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What this paper is about

We show that ε1-Cu3Ge forms a low-resistance ohmic contact to n-type GaAs. The ε1-Cu3Ge contact exhibits a planar and abrupt interface and contact resistivity of 6.5×10−7 Ω cm2 which is considerably lower than that reported for Ge/Pd and AuGeNi contacts on n-type GaAs with similar doping concentrations (∼1×1017 cm−3). The contact is electrically stable during annealing at temperatures up to 450 °C. We also show that in the Ge/Cu/n-type GaAs system, the contact remains ohmic over a wide range of Ge concentration that extends from 15 to 40 at. %. n-channel GaAs metal–semiconductor field-effect transistors using the ε1-Cu3Ge ohmic contacts demonstrate a higher transconductance compared to devices with Ge/Pd and AuGeNi contacts.

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Available abstract

We show that ε1-Cu3Ge forms a low-resistance ohmic contact to n-type GaAs. The ε1-Cu3Ge contact exhibits a planar and abrupt interface and contact resistivity of 6.5×10−7 Ω cm2 which is considerably lower than that reported for Ge/Pd and AuGeNi contacts on n-type GaAs with similar doping concentrations (∼1×1017 cm−3). The contact is electrically stable during annealing at temperatures up to 450 °C. We also show that in the Ge/Cu/n-type GaAs system, the contact remains ohmic over a wide range of Ge concentration that extends from 15 to 40 at. %. n-channel GaAs metal–semiconductor field-effect transistors using the ε1-Cu3Ge ohmic contacts demonstrate a higher transconductance compared to devices with Ge/Pd and AuGeNi contacts.

Key concepts: Ohmic contact, Contact resistance, Annealing (glass), Transconductance, Materials science, Electrical resistivity and conductivity, Optoelectronics, Doping

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