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Updated: Feb 25, 2026

Developing High Performance GaP/Si Heterojunction Solar Cells
Published on: November 16, 2018
High Photocurrent in Gated Graphene-Silicon Hybrid Photodiodes
Sarah Riazimehr1,2, Satender Kataria1,2, Rainer Bornemann1
1University of Siegen, School of Science and Technology, Department of Electrical Engineering and Computer Science, Hölderlinstr. 3, 57076 Siegen, Germany.
Abstract:
Graphene/silicon (G/Si) heterojunction based devices have been demonstrated as high responsivity photodetectors that are potentially compatible with semiconductor technology. Such G/Si Schottky junction diodes are typically in parallel with gated G/silicon dioxide (SiO2)/Si areas, where the graphene is contacted. Here, we utilize scanning photocurrent measurements to investigate the spatial distribution and explain the physical origin of photocurrent generation in these devices. We observe distinctly higher photocurrents underneath the isolating region of graphene on SiO2 adjacent to the Schottky junction of G/Si. A certain threshold voltage (VT) is required before this can be observed, and its origins are similar to that of the threshold voltage in metal oxide semiconductor field effect transistors. A physical model serves to explain the large photocurrents underneath SiO2 by the formation of an inversion layer in Si. Our findings contribute to a basic understanding of graphene/semiconductor hybrid devices which, in turn, can help in designing efficient optoelectronic devices and systems based on such 2D/3D heterojunctions.

