Showing posts with label Dao Hua Zhang. Show all posts
Showing posts with label Dao Hua Zhang. Show all posts

Saturday, March 20, 2021

Abstract-Plasmonic semiconductor nanogroove array enhanced broad spectral band millimetre and terahertz wave detection

 


Jinchao Tong, Fei Suo, Tianning Zhang, Zhiming Huang, Junhao Chu, Dao Hua Zhang


https://www.nature.com/articles/s41377-021-00505-w

High-performance uncooled millimetre and terahertz wave detectors are required as a building block for a wide range of applications. The state-of-the-art technologies, however, are plagued by low sensitivity, narrow spectral bandwidth, and complicated architecture. Here, we report semiconductor surface plasmon enhanced high-performance broadband millimetre and terahertz wave detectors which are based on nanogroove InSb array epitaxially grown on GaAs substrate for room temperature operation. By making a nanogroove array in the grown InSb layer, strong millimetre and terahertz wave surface plasmon polaritons can be generated at the InSb–air interfaces, which results in significant improvement in detecting performance. A noise equivalent power (NEP) of 2.2 × 10−14 W Hz−1/2 or a detectivity (D*) of 2.7 × 1012 cm Hz1/2 W−1 at 1.75 mm (0.171 THz) is achieved at room temperature. By lowering the temperature to the thermoelectric cooling available 200 K, the corresponding NEP and D* of the nanogroove device can be improved to 3.8 × 10−15 W Hz−1/2 and 1.6 × 1013 cm Hz1/2 W−1, respectively. In addition, such a single device can perform broad spectral band detection from 0.9 mm (0.330 THz) to 9.4 mm (0.032 THz). Fast responses of 3.5 µs and 780 ns are achieved at room temperature and 200 K, respectively. Such high-performance millimetre and terahertz wave photodetectors are useful for wide applications such as high capacity communications, walk-through security, biological diagnosis, spectroscopy, and remote sensing. In addition, the integration of plasmonic semiconductor nanostructures paves a way for realizing high performance and multifunctional long-wavelength optoelectrical devices.

Tuesday, February 6, 2018

Abstract-Revealing the physical mechanisms behind large field enhancement in hybrid spoof plasmonic systems




Yao Huang, Jingjing Zhang, Tie Jun Cui, Zhen Liao, and Dao Hua Zhang

https://www.osapublishing.org/josab/abstract.cfm?uri=josab-35-2-396&origin=search

We compare different spoof localized surface plasmon (LSP) schemes for increasing the field enhancement in the subwavelength regime. Based on the mechanisms of three differently widely used corrugated metallic disk structures, we compare three widely used corrugated disks and propose a nonconcentric spiral-shaped metallic disk structure, which not only maximizes the electromagnetic field confinement but also effectively reduces the radiation loss. The performance can be further improved by adopting a hybrid system consisting of two closely spaced nonconcentric spiral structures. We show that such a dimer of nonconcentric spiral disk produces significant field enhancement compared with the previously discussed structures. Our study provides a perceptive guideline for potential applications, such as plasmonic sensors and antennas, associated with LSPs in the microwave and terahertz frequencies.
© 2018 Optical Society of America