Improved Rectification Performance and Terahertz Detection in Hybrid Structure of Self-Switching Device (SSD) and Planar Barrier Diode (PBD) Using Two-Dimensional Device Simulation
-
Published:2020-03
Issue:
Volume:301
Page:111-117
-
ISSN:1662-9779
-
Container-title:Solid State Phenomena
-
language:
-
Short-container-title:SSP
Author:
Zakaria Nor Farhani1ORCID, Kasjoo Shahrir Rizal1, Isa Muammar Mohamad1, Zailan Zarimawaty1, Md Arshad Mohd Khairuddin1, Song Aimin2
Affiliation:
1. Universiti Malaysia Perlis (UniMAP) 2. The University of Manchester
Abstract
Recently, simulations of In0.48Ga0.52As-based Planar Barrier Diode (PBD) and Self-Switching Device (SSD) as millimeter-wave rectifiers were reported. Both PBD and SSD have a planar structure, but with different insulating shapes and working principles. In this work, a hybrid structure of the reported PBD and SSD in a parallel configuration is proposed, to exploit the advantages of each device. The advantages of high rectifying properties in the SSD and fast switching rate of the PBD are combined in this hybrid structure in order to obtain an improved rectification performance at zero-bias in the near terahertz frequency region. Analysis of the curvature co-efficient, γ, which is defined as the ratio of the second order to the first order derivative of the device’s I-V function was performed to evaluate the rectification performance. AC transient analyses were then executed in various frequencies to imitate the high-frequency signal inputs. By using this hybrid structure, the highest value of γ achieved has been improved to ~19 V-1 at 70 mV, and ~6 V-1 at zero-bias (compared to the previous results on PBDs). The estimated cut-off frequency obtained was ~360 GHz (0.36 THz), operating at zero-bias.
Publisher
Trans Tech Publications, Ltd.
Subject
Condensed Matter Physics,General Materials Science,Atomic and Molecular Physics, and Optics
Reference21 articles.
1. Yang, X., Zhao, X., Yang, K., Liu, Y., Liu, Y., Fu, W. and Luo, Y., 2016. Biomedical applications of terahertz spectroscopy and imaging. Trends in biotechnology, 34(10), pp.810-824. 2. C. Vicario, B. Monoszlai, M. Jazbinsek, S. H. Lee, S. H., Kwon, O. P., & Hauri, C. P. Intense, carrier frequency and bandwidth tunable quasi single-cycle pulses from an organic emitter covering the Terahertz frequency gap., Scientific reports 5:14394, (2015). 3. Yu, M., Yan, S., Sun, Y.Q., Sheng, W., Tang, F., Peng, X.Y. and Hu, Y., 2019. Characterization of Nucleobases in Broadband Terahertz Spectra from 0.5 to 10 THz with the Air-Biased-Coherent-Detection Technique. Sensors, 19(5), p.1148. 4. N. F. Zakaria, S. R. Kasjoo, M. M. Isa, Z. Zailan, M. K. M. Arshad, and S. Taking Self-switching Diodes as RF Rectifiers: Evaluation Methods and Current Progress., Bulletin of Electrical Engineering and Informatics 8.2, (2019). 5. M. A. Laughton and D. F. Warne. Power semiconductor devices." Electrical engineer,s reference book, 2003, pp.25-27.
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|