Field-effect silicon-plasmonic photodetector for coherent T-wave reception

光电子学 光电探测器 等离子体子 材料科学 带宽(计算) 太赫兹辐射 光子学 半导体 电信 计算机科学
作者
S. Muehlbrandt,T. Harter,Christoph Füllner,S. Ummethala,S. Wolf,Andreas Bacher,L. Hahn,Manfred Kohl,W. Freude,C. Koos
出处
期刊:Optics Express [Optica Publishing Group]
卷期号:29 (14): 21586-21586 被引量:1
标识
DOI:10.1364/oe.425158
摘要

Plasmonic internal photoemission detectors (PIPED) have recently been shown to combine compact footprint and high bandwidth with monolithic co-integration into silicon photonic circuits, thereby opening an attractive route towards optoelectronic generation and detection of waveforms in the sub-THz and THz frequency range, so-called T-waves. In this paper, we further expand the PIPED concept by introducing a metal-oxide-semiconductor (MOS) interface with an additional gate electrode that allows to control the carrier dynamics in the device and the degree of internal photoemission at the metal-semiconductor interfaces. We experimentally study the behavior of dedicated field-effect (FE-)PIPED test structures and develop a physical understanding of the underlying principles. We find that the THz down-conversion efficiency of FE-PIPED can be significantly increased when applying a gate potential. Building upon the improved understanding of the device physics, we further perform simulations and show that the gate field increases the carrier density in the conductive channel below the gate oxide to the extent that the device dynamics are determined by ultra-fast dielectric relaxation rather than by the carrier transit time. In this regime, the bandwidth can be increased to more than 1 THz. We believe that our experiments open a new path towards understanding the principles of internal photoemission in plasmonic structures, leading to PIPED-based optoelectronic signal processing systems with unprecedented bandwidth and efficiency.
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