Overcoming the Fermi-Level Pinning Effect in the Nanoscale Metal and Silicon Interface

Author:

Su Zih-Chun1,Lin Ching-Fuh123ORCID

Affiliation:

1. Graduate Institute of Photonics and Optoelectronics, National Taiwan University, Taipei 10617, Taiwan

2. Graduate Institute of Electronics Engineering, National Taiwan University, Taipei 10617, Taiwan

3. Department of Electrical Engineering, National Taiwan University, Taipei 10617, Taiwan

Abstract

Silicon-based photodetectors are attractive as low-cost and environmentally friendly optical sensors. Also, their compatibility with complementary metal-oxide-semiconductor (CMOS) technology is advantageous for the development of silicon photonics systems. However, extending optical responsivity of silicon-based photodetectors to the mid-infrared (mid-IR) wavelength range remains challenging. In developing mid-IR infrared Schottky detectors, nanoscale metals are critical. Nonetheless, one key factor is the Fermi-level pinning effect at the metal/silicon interface and the presence of metal-induced gap states (MIGS). Here, we demonstrate the utilization of the passivated surface layer on semiconductor materials as an insulating material in metal-insulator-semiconductor (MIS) contacts to mitigate the Fermi-level pinning effect. The removal of Fermi-level pinning effectively reduces the Schottky barrier height by 12.5% to 16%. The demonstrated devices exhibit a high responsivity of up to 234 μA/W at a wavelength of 2 μm, 48.2 μA/W at 3 μm, and 1.75 μA/W at 6 μm. The corresponding detectivities at 2 and 3 μm are 1.17 × 108 cm Hz1/2 W−1 and 2.41 × 107 cm Hz1/2 W−1, respectively. The expanded sensing wavelength range contributes to the application development of future silicon photonics integration platforms.

Funder

Ministry of Science and Technology

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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